Changes for page LT-22222-L -- LoRa I/O Controller User Manual
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... ... @@ -1,1 +1,1 @@ 1 -LT-22222-L LoRa IO Controller User Manual 1 +LT-22222-L -- LoRa IO Controller User Manual - Author
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... ... @@ -1,1 +1,1 @@ 1 -XWiki. Edwin1 +XWiki.pradeeka - Content
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... ... @@ -3,6 +3,10 @@ 3 3 4 4 5 5 6 + 7 + 8 + 9 + 6 6 **Table of Contents:** 7 7 8 8 {{toc/}} ... ... @@ -13,37 +13,32 @@ 13 13 14 14 15 15 16 -= 1.Introduction = 20 += 1. Introduction = 17 17 22 +== 1.1 What is the LT-22222-L I/O Controller? == 18 18 19 -== 1.1 What is LT Series I/O Controller == 20 - 21 21 ((( 22 - 25 +((( 26 +The Dragino (% style="color:blue" %)**LT-22222-L I/O Controller**(%%) is an advanced LoRaWAN device designed to provide seamless wireless long-range connectivity with various I/O options, including analog current and voltage inputs, digital inputs and outputs, and relay outputs. 23 23 24 -The Dragino (%style="color:blue"%)**LTseries I/OModules**(%%) are LongRangeLoRaWAN I/O Controller. ItcontainsdifferentI/O Interfacesuchas:** (%style="color:blue"%)analog currentInput,analogvoltageinput(%%)**(%style="color:blue" %),**relayoutput**,**digitalinput**(%%)and(% style="color:blue" %)**digital output**(%%) etc. TheLT I/O Modules are designedto simplify thestallation ofI/O monitoring.28 +The LT-22222-L I/O Controller simplifies and enhances I/O monitoring and controlling. It is ideal for professional applications in wireless sensor networks, including irrigation systems, smart metering, smart cities, building automation, and more. These controllers are designed for easy, cost-effective deployment using LoRa wireless technology. 25 25 ))) 26 - 27 -((( 28 -The LT I/O Controllers allows the user to send data and reach extremely long ranges. It provides ultra-long range spread spectrum communication and high interference immunity whilst minimizing current consumption. It targets professional wireless sensor network applications such as irrigation systems, smart metering, smart cities, smartphone detection, building automation, and so on. 29 29 ))) 30 30 31 31 ((( 32 - The LT I/O Controllersis aimingtoprovide an(%style="color:blue" %)**easyandlowcostinstallation**(%%)byusing LoRawireless technology.33 +With the LT-22222-L I/O Controller, users can transmit data over ultra-long distances with low power consumption using LoRa, a spread-spectrum modulation technique derived from chirp spread spectrum (CSS) technology that operates on license-free ISM bands. 33 33 ))) 34 34 35 -((( 36 -The use environment includes: 37 -))) 36 +> The LT Series I/O Controllers are designed for easy, low-cost installation on LoRaWAN networks. 38 38 39 39 ((( 40 -1) If user's area has LoRaWAN service coverage, they can just install the I/O controller and configure it to connect the LoRaWAN provider via wireless. 41 -))) 39 +You can connect the LT-22222-L I/O Controller to a LoRaWAN network service provider in several ways: 42 42 43 -((( 44 -2) User can set up a LoRaWAN gateway locally and configure the controller to connect to the gateway via wireless. 41 +* If there is public LoRaWAN network coverage in the area where you plan to install the device (e.g., The Things Network), you can select a network and register the LT-22222-L I/O controller with it. 42 +* If there is no public LoRaWAN coverage in your area, you can set up a LoRaWAN gateway, or multiple gateways, and connect them to a LoRaWAN network server to create adequate coverage. Then, register the LT-22222-L I/O controller with this network. 43 +* Setup your own private LoRaWAN network. 45 45 46 - 45 +> You can use a LoRaWAN gateway, such as the Dragino LG308, to expand or create LoRaWAN coverage in your area. 47 47 ))) 48 48 49 49 ((( ... ... @@ -52,144 +52,59 @@ 52 52 53 53 ))) 54 54 54 +== 1.2 Specifications == 55 55 56 -== 1.2 Specifications == 57 - 58 -((( 59 - 60 - 61 61 (% style="color:#037691" %)**Hardware System:** 62 -))) 63 63 64 -* ((( 65 -STM32L072CZT6 MCU 66 -))) 67 -* ((( 68 -SX1276/78 Wireless Chip 69 -))) 70 -* ((( 71 -((( 72 -Power Consumption: 73 -))) 58 +* STM32L072xxxx MCU 59 +* SX1276/78 Wireless Chip 60 +* Power Consumption: 61 +** Idle: 4mA@12v 62 +** 20dB Transmit: 34mA@12v 63 +* Operating Temperature: -40 ~~ 85 Degrees, No Dew 74 74 75 -* ((( 76 -Idle: 4mA@12v 77 -))) 78 -* ((( 79 -20dB Transmit: 34mA@12v 80 -))) 81 -))) 82 - 83 -((( 84 - 85 - 86 86 (% style="color:#037691" %)**Interface for Model: LT22222-L:** 87 -))) 88 88 89 -* ((( 90 -2 x Digital dual direction Input (Detect High/Low signal, Max: 50v, or 220v with optional external resistor) 91 -))) 92 -* ((( 93 -2 x Digital Output (NPN output. Max pull up voltage 36V,450mA) 94 -))) 95 -* ((( 96 -2 x Relay Output (5A@250VAC / 30VDC) 97 -))) 98 -* ((( 99 -2 x 0~~20mA Analog Input (res:0.01mA) 100 -))) 101 -* ((( 102 -2 x 0~~30V Analog Input (res:0.01v) 103 -))) 104 -* ((( 105 -Power Input 7~~ 24V DC. 106 -))) 67 +* 2 x Digital dual direction Input (Detect High/Low signal, Max: 50v, or 220v with optional external resistor) 68 +* 2 x Digital Output (NPN output. Max pull-up voltage 36V,450mA) 69 +* 2 x Relay Output (5A@250VAC / 30VDC) 70 +* 2 x 0~~20mA Analog Input (res:0.01mA) 71 +* 2 x 0~~30V Analog Input (res:0.01v) 72 +* Power Input 7~~ 24V DC. 107 107 108 -((( 109 - 110 - 111 111 (% style="color:#037691" %)**LoRa Spec:** 112 -))) 113 113 114 -* ((( 115 -((( 116 -Frequency Range: 117 -))) 76 +* Frequency Range: 77 +** Band 1 (HF): 862 ~~ 1020 Mhz 78 +** Band 2 (LF): 410 ~~ 528 Mhz 79 +* 168 dB maximum link budget. 80 +* +20 dBm - 100 mW constant RF output vs. 81 +* +14 dBm high-efficiency PA. 82 +* Programmable bit rate up to 300 kbps. 83 +* High sensitivity: down to -148 dBm. 84 +* Bullet-proof front end: IIP3 = -12.5 dBm. 85 +* Excellent blocking immunity. 86 +* Low RX current of 10.3 mA, 200 nA register retention. 87 +* Fully integrated synthesizer with a resolution of 61 Hz. 88 +* FSK, GFSK, MSK, GMSK, LoRaTM and OOK modulation. 89 +* Built-in bit synchronizer for clock recovery. 90 +* Preamble detection. 91 +* 127 dB Dynamic Range RSSI. 92 +* Automatic RF Sense and CAD with ultra-fast AFC. 93 +* Packet engine up to 256 bytes with CRC. 118 118 119 -* ((( 120 -Band 1 (HF): 862 ~~ 1020 Mhz 121 -))) 122 -* ((( 123 -Band 2 (LF): 410 ~~ 528 Mhz 124 -))) 125 -))) 126 -* ((( 127 -168 dB maximum link budget. 128 -))) 129 -* ((( 130 -+20 dBm - 100 mW constant RF output vs. 131 -))) 132 -* ((( 133 -+14 dBm high efficiency PA. 134 -))) 135 -* ((( 136 -Programmable bit rate up to 300 kbps. 137 -))) 138 -* ((( 139 -High sensitivity: down to -148 dBm. 140 -))) 141 -* ((( 142 -Bullet-proof front end: IIP3 = -12.5 dBm. 143 -))) 144 -* ((( 145 -Excellent blocking immunity. 146 -))) 147 -* ((( 148 -Low RX current of 10.3 mA, 200 nA register retention. 149 -))) 150 -* ((( 151 -Fully integrated synthesizer with a resolution of 61 Hz. 152 -))) 153 -* ((( 154 -FSK, GFSK, MSK, GMSK, LoRaTM and OOK modulation. 155 -))) 156 -* ((( 157 -Built-in bit synchronizer for clock recovery. 158 -))) 159 -* ((( 160 -Preamble detection. 161 -))) 162 -* ((( 163 -127 dB Dynamic Range RSSI. 164 -))) 165 -* ((( 166 -Automatic RF Sense and CAD with ultra-fast AFC. 167 -))) 168 -* ((( 169 -Packet engine up to 256 bytes with CRC. 170 - 171 - 172 - 173 - 174 -))) 175 - 176 176 == 1.3 Features == 177 177 178 - 179 179 * LoRaWAN Class A & Class C protocol 180 180 * Optional Customized LoRa Protocol 181 181 * Frequency Bands: CN470/EU433/KR920/US915/EU868/AS923/AU915/RU864/IN865/MA869 182 182 * AT Commands to change parameters 183 -* Remote configure parameters via LoRa Downlink 101 +* Remotely configure parameters via LoRaWAN Downlink 184 184 * Firmware upgradable via program port 185 185 * Counting 186 186 105 +== 1.4 Applications == 187 187 188 - 189 - 190 -== 1.4 Applications == 191 - 192 - 193 193 * Smart Buildings & Home Automation 194 194 * Logistics and Supply Chain Management 195 195 * Smart Metering ... ... @@ -197,15 +197,15 @@ 197 197 * Smart Cities 198 198 * Smart Factory 199 199 200 - 201 - 202 - 203 203 == 1.5 Hardware Variants == 204 204 205 205 206 -(% border="1" style="background-color:#f7faff; width:500px" %) 207 -|(% style="width:103px" %)**Model**|(% style="width:131px" %)**Photo**|(% style="width:334px" %)**Description** 208 -|(% style="width:103px" %)**LT22222-L**|(% style="width:131px" %)[[image:1653296302983-697.png]]|(% style="width:334px" %)((( 117 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:500px" %) 118 +|(% style="background-color:#4f81bd; color:white; width:103px" %)**Model**|(% style="background-color:#4f81bd; color:white; width:131px" %)**Photo**|(% style="background-color:#4f81bd; color:white; width:266px" %)**Description** 119 +|(% style="width:103px" %)**LT22222-L**|(% style="width:131px" %)((( 120 +(% style="text-align:center" %) 121 +[[image:image-20230424115112-1.png||height="106" width="58"]] 122 +)))|(% style="width:334px" %)((( 209 209 * 2 x Digital Input (Bi-direction) 210 210 * 2 x Digital Output 211 211 * 2 x Relay Output (5A@250VAC / 30VDC) ... ... @@ -214,135 +214,192 @@ 214 214 * 1 x Counting Port 215 215 ))) 216 216 131 += 2. Assembling the Device = 217 217 133 +== 2.1 What is included in the package? == 218 218 135 +The package includes the following items: 219 219 220 -= 2. Power ON Device = 137 +* 1 x LT-22222-L I/O Controller 138 +* 1 x LoRaWAN antenna matched to the frequency of the LT-22222-L 139 +* 1 x bracket for wall mounting 140 +* 1 x programming cable 221 221 142 +Attach the LoRaWAN antenna to the antenna connector, ANT,** **located on the top right side of the device, next to the upper terminal block. Secure the antenna by tightening it clockwise. 222 222 223 - TheLT controller can be powered by 7 ~~24V DC power source.Connect VIN to PowerInput V+ and GND to powerinput V- to power the LT controller.144 +== 2.2 Terminals == 224 224 225 -((( 226 -PWR will on when device is properly powered. 146 +Upper screw terminal block (from left to right): 227 227 228 - 229 -))) 148 +(% style="width:634px" %) 149 +|=(% style="width: 295px;" %)Terminal|=(% style="width: 338px;" %)Function 150 +|(% style="width:295px" %)GND|(% style="width:338px" %)Ground 151 +|(% style="width:295px" %)VIN|(% style="width:338px" %)Input Voltage 152 +|(% style="width:295px" %)AVI2|(% style="width:338px" %)Analog Voltage Input Terminal 2 153 +|(% style="width:295px" %)AVI1|(% style="width:338px" %)Analog Voltage Input Terminal 1 154 +|(% style="width:295px" %)ACI2|(% style="width:338px" %)Analog Current Input Terminal 2 155 +|(% style="width:295px" %)ACI1|(% style="width:338px" %)Analog Current Input Terminal 1 230 230 231 - [[image:1653297104069-180.png]]157 +Lower screw terminal block (from left to right): 232 232 159 +(% style="width:633px" %) 160 +|=(% style="width: 296px;" %)Terminal|=(% style="width: 334px;" %)Function 161 +|(% style="width:296px" %)RO1-2|(% style="width:334px" %)Relay Output 1 162 +|(% style="width:296px" %)RO1-1|(% style="width:334px" %)Relay Output 1 163 +|(% style="width:296px" %)RO2-2|(% style="width:334px" %)Relay Output 2 164 +|(% style="width:296px" %)RO2-1|(% style="width:334px" %)Relay Output 2 165 +|(% style="width:296px" %)DI2+|(% style="width:334px" %)Digital Input 2 166 +|(% style="width:296px" %)DI2-|(% style="width:334px" %)Digital Input 2 167 +|(% style="width:296px" %)DI1+|(% style="width:334px" %)Digital Input 1 168 +|(% style="width:296px" %)DI1-|(% style="width:334px" %)Digital Input 1 169 +|(% style="width:296px" %)DO2|(% style="width:334px" %)Digital Output 2 170 +|(% style="width:296px" %)DO1|(% style="width:334px" %)Digital Output 1 233 233 172 +== 2.3 Powering the LT-22222-L == 234 234 235 - =3.OperationMode=174 +The LT-22222-L I/O Controller can be powered by a 7–24V DC power source. Connect the power supply’s positive wire to the VIN and the negative wire to the GND screw terminals. The power indicator (PWR) LED will turn on when the device is properly powered. 236 236 237 237 238 - ==3.1How it works? ==177 +[[image:1653297104069-180.png]] 239 239 240 240 241 -((( 242 -The LT is configured as LoRaWAN OTAA Class C mode by default. It has OTAA keys to join network. To connect a local LoRaWAN network, user just need to input the OTAA keys in the network server and power on the LT. It will auto join the network via OTAA. For LT-22222-L, the LED will show the Join status: After power on (% style="color:green" %)**TX LED**(%%) will fast blink 5 times, LT-22222-L will enter working mode and start to JOIN LoRaWAN network. (% style="color:green" %)**TX LED**(%%) will be on for 5 seconds after joined in network. When there is message from server, the RX LED will be on for 1 second. 243 -))) 180 += 3. Operation Mode = 244 244 245 -((( 246 -In case user can't set the OTAA keys in the network server and has to use the existing keys from server. User can [[use AT Command>>||anchor="H4.UseATCommand"]] to set the keys in the devices. 247 -))) 182 +== 3.1 How does it work? == 248 248 184 +By default, the LT-22222-L is configured to operate in LoRaWAN Class C mode. It supports OTAA (Over-the-Air Activation), the most secure method for activating a device with a LoRaWAN network server. The LT-22222-L comes with device registration information that allows you to register it with a LoRaWAN network, enabling the device to perform OTAA activation with the network server upon initial power-up and after any subsequent reboots. 249 249 186 +For LT-22222-L, the LED will show the Join status: After powering on, the TX LED will fast-blink 5 times which means the LT-22222-L will enter the working mode and start to JOIN the LoRaWAN network. The TX LED will be on for 5 seconds after joining the network. When there is a message from the server, the RX LED will be on for 1 second. 250 250 251 - ==3.2Example tojoinLoRaWANnetwork ==188 +In case you can't set the root key and other identifiers in the network server and must use them from the server, you can use [[AT Commands>>||anchor="H4.UseATCommand"]] to configure them on the device. 252 252 190 +== 3.2 Registering with a LoRaWAN network server == 253 253 254 -((( 255 -This chapter shows an example for how to join the TTN LoRaWAN Network. Below is the network structure, we use our LG308 as LoRaWAN gateway here. 192 +The diagram below shows how the LT-22222-L connects to a typical LoRaWAN network. 256 256 257 - 258 -))) 259 - 260 260 [[image:image-20220523172350-1.png||height="266" width="864"]] 261 261 196 +=== 3.2.1 Prerequisites === 262 262 263 -((( 264 -The LG308 is already set to connect to [[TTN network >>url:https://www.thethingsnetwork.org/]]. So what we need to do now is only configure register this device to TTN: 198 +Make sure you have the device registration information such as DevEUI, AppEUI, and AppKey with you. The registration information can be found on a sticker that can be found inside the package. Please keep the **registration information** sticker in a safe place for future reference. 265 265 266 - 267 -))) 200 +[[image:image-20230425173427-2.png||height="246" width="530"]] 268 268 269 -((( 270 -(% style="color:blue" %)**Step 1**(%%): Create a device in TTN with the OTAA keys from LT IO controller. 271 -))) 202 +The following subsections explain how to register the LT-22222-L with different LoRaWAN network server providers. 272 272 273 -((( 274 -Each LT is shipped with a sticker with the default device EUI as below: 275 -))) 204 +=== 3.2.2 The Things Stack Sandbox (TTSS) === 276 276 277 -[[image:1653297924498-393.png]] 206 +* Log in to your [[The Things Stack Sandbox>>https://eu1.cloud.thethings.network]] account. 207 +* Create an application if you do not have one yet. 208 +* Register LT-22222-L with that application. Two registration options are available: 278 278 210 +==== Using the LoRaWAN Device Repository: ==== 279 279 280 -Input these keys in the LoRaWAN Server portal. Below is TTN screen shot: 212 +* Go to your application and click on the **Register end device** button. 213 +* On the **Register end device** page: 214 +** Select the option **Select the end device in the LoRaWAN Device Repository**. 215 +** Choose the **End device brand**, **Model**, **Hardware version**, **Firmware version**, and **Profile (Region)**. 216 +** Select the **Frequency plan** that matches your device. 281 281 282 - Add APP EUIintheapplication.218 +[[image:lt-22222-l-dev-repo-reg-p1.png||height="625" width="1000"]] 283 283 284 -[[image:1653297955910-247.png||height="321" width="716"]] 220 +* 221 +** Enter the **AppEUI** in the **JoinEUI** field and click the **Confirm** button. 222 +** Enter the **DevEUI** in the **DevEUI** field. 223 +** Enter the **AppKey** in the **AppKey** field. 224 +** In the **End device ID** field, enter a unique name within this application for your LT-22222-N. 225 +** Under **After registration**, select the **View registered end device** option. 285 285 227 +[[image:lt-22222-l-dev-repo-reg-p2.png||height="625" width="1000"]] 286 286 287 - AddAPP KEYandDEVEUI229 +==== Entering device information manually: ==== 288 288 289 -[[image:1653298023685-319.png]] 231 +* On the **Register end device** page: 232 +** Select the **Enter end device specifies manually** option as the input method. 233 +** Select the **Frequency plan** that matches your device. 234 +** Select the **LoRaWAN version**. 235 +** Select the **Regional Parameters version**. 236 +** Click **Show advanced activation, LoRaWAN class and cluster settings** link to expand the section. 237 +** Select **Over the air activation (OTAA)** option under the **Activation mode** 238 +** Select **Class C (Continuous)** from the **Additional LoRaWAN class capabilities**. 290 290 240 +[[image:lt-22222-l-manually-p1.png||height="625" width="1000"]] 291 291 292 292 293 -((( 294 -(% style="color:blue" %)**Step 2**(%%): Power on LT and it will auto join to the TTN network. After join success, it will start to upload message to TTN and user can see in the panel. 295 -))) 243 +* Enter **AppEUI** in the **JoinEUI** field and click the **Confirm** button. 244 +* Enter **DevEUI** in the **DevEUI** field. 245 +* Enter **AppKey** in the **AppKey** field. 246 +* In the **End device ID** field, enter a unique name within this application for your LT-22222-N. 247 +* Under **After registration**, select the **View registered end device** option. 296 296 249 +[[image:lt-22222-l-manually-p2.png||height="625" width="1000"]] 250 + 251 + 252 +==== Joining ==== 253 + 254 +Click on **Live Data** in the left navigation. Then, power on the device, and it will join The Things Stack Sandbox. You can see the join request, join accept, followed by uplink messages form the device showing in the Live Data panel. 255 + 297 297 [[image:1653298044601-602.png||height="405" width="709"]] 298 298 299 299 259 +== 3.3 Work Modes and their Uplink Payload formats == 300 300 301 -== 3.3 Uplink Payload == 302 302 262 +The LT-22222-L has 5 **work modes**. It also has an interrupt/trigger mode for different types of applications that can be used together with any working mode as an additional feature. The default mode is MOD1 and you can switch between these modes using AT commands. 303 303 304 - Therearefiveworking modes+oneinterrupt modeon LTfordifferenttypeapplication:264 +* (% style="color:blue" %)**MOD1**(%%): (default mode/factory set): 2ACI + 2AVI + DI + DO + RO 305 305 306 -* (% style="color:blue" %)**MOD1**(%%): (default setting): 2 x ACI + 2AVI + DI + DO + RO 307 307 * (% style="color:blue" %)**MOD2**(%%): Double DI Counting + DO + RO 267 + 308 308 * (% style="color:blue" %)**MOD3**(%%): Single DI Counting + 2 x ACI + DO + RO 269 + 309 309 * (% style="color:blue" %)**MOD4**(%%): Single DI Counting + 1 x Voltage Counting + DO + RO 271 + 310 310 * (% style="color:blue" %)**MOD5**(%%): Single DI Counting + 2 x AVI + 1 x ACI + DO + RO 273 + 311 311 * (% style="color:blue" %)**ADDMOD6**(%%): Trigger Mode, Optional, used together with MOD1 ~~ MOD5 312 312 313 - 314 - 315 - 316 316 === 3.3.1 AT+MOD~=1, 2ACI+2AVI === 317 317 278 +((( 279 +The uplink payload is 11 bytes long. Uplink messages are sent over LoRaWAN FPort 2. By default, one uplink is sent every 10 minutes. (% style="display:none" wfd-invisible="true" %) 318 318 319 -The uplink payload includes totally 9 bytes. Uplink packets use FPORT=2 and every 10 minutes send one uplink by default. 281 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 282 +|(% style="background-color:#4f81bd; color:white" %)**Size(bytes)**|(% style="background-color:#4f81bd; color:white" %)**2**|(% style="background-color:#4f81bd; color:white" %)**2**|(% style="background-color:#4f81bd; color:white" %)**2**|(% style="background-color:#4f81bd; color:white" %)**2**|(% style="background-color:#4f81bd; color:white" %)**1**|(% style="background-color:#4f81bd; color:white" %)**1**|(% style="background-color:#4f81bd; color:white" %)**1** 283 +|Value|((( 284 +AVI1 voltage 285 +)))|((( 286 +AVI2 voltage 287 +)))|((( 288 +ACI1 Current 289 +)))|((( 290 +ACI2 Current 291 +)))|**DIDORO***|((( 292 +Reserve 293 +)))|MOD 294 +))) 320 320 321 -[[image:image-20220523174024-3.png]] 322 - 323 323 ((( 324 - 297 +(% style="color:#4f81bd" %)*** DIDORO**(%%) is a combination of RO1, RO2, DI3, DI2, DI1, DO3, DO2 and DO1, and its size is1 byte long as shown below. 325 325 326 -(% style="color:#4f81bd" %)**DIDORO**(%%) is a combination for RO1, RO2, DI3, DI2, DI1, DO3, DO2 and DO1. Totally 1bytes as below 299 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 300 +|**bit 7**|**bit 6**|**bit 5**|**bit 4**|**bit 3**|**bit 2**|**bit 1**|**bit 0** 301 +|RO1|RO2|--DI3--|DI2|DI1|--DO3--|DO2|DO1 327 327 ))) 328 328 329 -[[image:image-20220523174254-4.png]] 304 +* RO is for the relay. ROx=1: CLOSED, ROx=0 always OPEN. 305 +* DI is for digital input. DIx=1: HIGH or FLOATING, DIx=0: LOW. 306 +* DO is for reverse digital output. DOx=1: LOW, DOx=0: HIGH or FLOATING. 330 330 331 -* RO is for relay. ROx=1 : close,ROx=0 always open. 332 -* DI is for digital input. DIx=1: high or float, DIx=0: low. 333 -* DO is for reverse digital output. DOx=1: output low, DOx=0: high or float. 308 +(% style="color:red" %)**Note: DI3 and DO3 bits are not valid for LT-22222-L** 334 334 310 +For example, if the payload is: [[image:image-20220523175847-2.png]] 335 335 336 336 337 - (%style="color:red"%)**Note:DI3andDO3bit arenot valid forLT-22222-L**313 +**The interface values can be calculated as follows: ** 338 338 339 - Forexampleif payload is: [[image:image-20220523175847-2.png]]315 +AVI1 channel voltage is 0x04AB/1000=1195(DEC)/1000=1.195V 340 340 341 - 342 -**The value for the interface is: ** 343 - 344 -AVI1 channel voltage is 0x04AB/1000=1195(DEC)/1000=1.195V 345 - 346 346 AVI2 channel voltage is 0x04AC/1000=1.196V 347 347 348 348 ACI1 channel current is 0x1310/1000=4.880mA ... ... @@ -349,67 +349,66 @@ 349 349 350 350 ACI2 channel current is 0x1300/1000=4.864mA 351 351 352 -The last byte 0xAA= 10101010( B) means323 +The last byte 0xAA= **10101010**(b) means, 353 353 354 -* [1] RO1 relay channel is close and the RO1 LED is ON. 355 -* [0] RO2 relay channel is open and RO2 LED is OFF; 325 +* [1] The RO1 relay channel is CLOSED, and the RO1 LED is ON. 326 +* [0] The RO2 relay channel is OPEN, and the RO2 LED is OFF. 327 +* [1] DI3 - not used for LT-22222-L. 328 +* [0] DI2 channel input is LOW, and the DI2 LED is OFF. 329 +* [1] DI1 channel input state: 330 +** DI1 is FLOATING when no sensor is connected between DI1+ and DI1-. 331 +** DI1 is HIGH when a sensor is connected between DI1- and DI1+ and the sensor is ACTIVE. 332 +** DI1 LED is ON in both cases. 333 +* [0] DO3 - not used for LT-22222-L. 334 +* [1] DO2 channel output is LOW, and the DO2 LED is ON. 335 +* [0] DO1 channel output state: 336 +** DO1 is FLOATING when there is no load between DO1 and V+. 337 +** DO1 is HIGH when there is a load between DO1 and V+. 338 +** DO1 LED is OFF in both cases. 356 356 357 - 358 - 359 -**LT22222-L:** 360 - 361 -* [1] DI2 channel is high input and DI2 LED is ON; 362 -* [0] DI1 channel is low input; 363 - 364 -* [0] DO3 channel output state 365 -** DO3 is float in case no load between DO3 and V+.; 366 -** DO3 is high in case there is load between DO3 and V+. 367 -** DO3 LED is off in both case 368 -* [1] DO2 channel output is low and DO2 LED is ON. 369 -* [0] DO1 channel output state 370 -** DO1 is float in case no load between DO1 and V+.; 371 -** DO1 is high in case there is load between DO1 and V+. 372 -** DO1 LED is off in both case 373 - 374 - 375 - 376 - 377 - 378 378 === 3.3.2 AT+MOD~=2, (Double DI Counting) === 379 379 380 380 381 -**For LT-22222-L**: this mode the **DI1 and DI2** are used as counting pins. 382 - 383 383 ((( 384 - Total:11bytespayload344 +**For LT-22222-L**: In this mode, **DI1 and DI2** are used as counting pins. 385 385 ))) 386 386 387 -[[image:image-20220523180452-3.png]] 347 +((( 348 +The uplink payload is 11 bytes long. 388 388 350 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 351 +|(% style="background-color:#4f81bd; color:white" %)**Size(bytes)**|(% style="background-color:#4f81bd; color:white" %)**4**|(% style="background-color:#4f81bd; color:white" %)**4**|(% style="background-color:#4f81bd; color:white" %)**1**|(% style="background-color:#4f81bd; color:white" %)**1**|(% style="background-color:#4f81bd; color:white" %)**1** 352 +|Value|COUNT1|COUNT2 |DIDORO*|((( 353 +Reserve 354 +)))|MOD 355 +))) 389 389 390 390 ((( 391 -(% style="color:#4f81bd" %)**DIDORO**(%%) is a combination for RO1, RO2, DO3, DO2 and DO1. Totally 1bytes as below 392 -))) 358 +(% style="color:#4f81bd" %)***DIDORO**(%%) is a combination of RO1, RO2, DO3, DO2 and DO1, and its size is 1 byte long as shown below. 393 393 394 -[[image:image-20220523180506-4.png]] 360 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 361 +|**bit 7**|**bit 6**|**bit 5**|**bit 4**|**bit 3**|**bit 2**|**bit 1**|**bit 0** 362 +|RO1|RO2|FIRST|Reserve|Reserve|--DO3--|DO2|DO1 395 395 396 -* RO is for relay. ROx=1 : close,ROx=0 always open. 397 -* FIRST: Indicate this is the first packet after join network. 398 -* DO is for reverse digital output. DOx=1: output low, DOx=0: high or float. 399 - 400 -((( 401 -(% style="color:red" %)**Note: DO3 bit is not valid for LT-22222-L.** 364 +* RO is for the relay. ROx=1: CLOSED, ROx=0 always OPEN. 402 402 ))) 403 403 367 +* FIRST: Indicates that this is the first packet after joining the network. 368 +* DO is for reverse digital output. DOx=1: LOW, DOx=0: HIGH or FLOATING. 369 + 404 404 ((( 371 +(% style="color:red" %)**Note: DO3 bit is not valid for LT-22222-L** 372 + 405 405 374 +))) 406 406 407 -**To use counting mode, please run:** 376 +((( 377 +**To activate this mode, run the following AT commands:** 408 408 ))) 409 409 380 +((( 410 410 (% class="box infomessage" %) 411 411 ((( 412 -((( 413 413 **AT+MOD=2** 414 414 415 415 **ATZ** ... ... @@ -420,60 +420,62 @@ 420 420 421 421 422 422 (% style="color:#4f81bd" %)**AT Commands for counting:** 423 - 424 - 425 425 ))) 426 426 427 427 ((( 428 428 **For LT22222-L:** 429 429 398 +(% style="color:blue" %)**AT+TRIG1=0,100**(%%)** (sets the DI1 port to trigger on a LOW level. The valid signal duration is 100ms) ** 430 430 431 -(% style="color:blue" %)**AT+TRIG1= 0,100**(%%)**lowlevel,valid signal is 100ms) **400 +(% style="color:blue" %)**AT+TRIG1=1,100**(%%)** (sets the DI1 port to trigger on a HIGH level. The valid signal duration is 100ms) ** 432 432 433 -(% style="color:blue" %)**AT+TRIG 1=1,100**(%%)**1port to trigger onhighlevel,valid signal is 100ms402 +(% style="color:blue" %)**AT+TRIG2=0,100**(%%)** (sets the DI2 port to trigger on a LOW level. The valid signal duration is 100ms) ** 434 434 435 -(% style="color:blue" %)**AT+TRIG2= 0,100**(%%)**lowlevel,valid signal is 100ms) **404 +(% style="color:blue" %)**AT+TRIG2=1,100**(%%)** (sets the DI2 port to trigger on a HIGH level. The valid signal duration is 100ms) ** 436 436 437 -(% style="color:blue" %)**AT+T RIG2=1,100**(%%)**DI2 portto triggeronhigh level, validsignalis 100ms)406 +(% style="color:blue" %)**AT+SETCNT=1,60**(%%)** (sets the COUNT1 value to 60)** 438 438 439 -(% style="color:blue" %)**AT+SETCNT=1,60**(%%)** (Set COUNT1 value to 60)** 440 - 441 -(% style="color:blue" %)**AT+SETCNT=2,60**(%%)** (Set COUNT2 value to 60)** 408 +(% style="color:blue" %)**AT+SETCNT=2,60 **(%%)**(sets the COUNT2 value to 60)** 442 442 ))) 443 443 444 444 445 - 446 446 === 3.3.3 AT+MOD~=3, Single DI Counting + 2 x ACI === 447 447 448 448 449 -**LT22222-L**: This mode the DI1 is used as a counting pin.415 +**LT22222-L**: In this mode, the DI1 is used as a counting pin. 450 450 451 -[[image:image-20220523181246-5.png]] 417 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 418 +|(% style="background-color:#4f81bd; color:white" %)**Size(bytes)**|(% style="background-color:#4f81bd; color:white" %)**4**|(% style="background-color:#4f81bd; color:white" %)**2**|(% style="background-color:#4f81bd; color:white" %)**2**|(% style="background-color:#4f81bd; color:white" %)**1**|(% style="background-color:#4f81bd; color:white" %)**1**|(% style="background-color:#4f81bd; color:white" %)**1** 419 +|Value|COUNT1|((( 420 +ACI1 Current 421 +)))|((( 422 +ACI2 Current 423 +)))|DIDORO*|Reserve|MOD 452 452 453 453 ((( 454 - 426 +(% style="color:#4f81bd" %)***DIDORO**(%%) is a combination of RO1, RO2, DI3, DI2, DI1, DO3, DO2 and DO1, for a total of 1 byte, as shown below. 455 455 456 -(% style="color:#4f81bd" %)**DIDORO**(%%) is a combination for RO1, RO2, DI3, DI2, DI1, DO3, DO2 and DO1. Totally 1bytes as below 428 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 429 +|**bit 7**|**bit 6**|**bit 5**|**bit 4**|**bit 3**|**bit 2**|**bit 1**|**bit 0** 430 +|RO1|RO2|FIRST|Reserve|Reserve|--DO3--|DO2|DO1 457 457 ))) 458 458 459 -[[image:image-20220523181301-6.png]] 433 +* RO is for the relay. ROx=1: closed, ROx=0 always open. 434 +* FIRST: Indicates that this is the first packet after joining the network. 435 +* DO is for reverse digital output. DOx=1: output low, DOx=0: high or floating. 460 460 461 -* RO is for relay. ROx=1 : close,ROx=0 always open. 462 -* FIRST: Indicate this is the first packet after join network. 463 -* DO is for reverse digital output. DOx=1: output low, DOx=0: high or float. 464 - 465 465 ((( 466 -(% style="color:red" %)**Note: DO3 is not valid for LT-22222-L.** 438 +(% style="color:red" %)**Note: DO3 bit is not valid for LT-22222-L.** 467 467 ))) 468 468 469 469 470 470 ((( 471 -**To usecountingmode,pleaserun:**443 +**To activate this mode, run the following AT commands:** 472 472 ))) 473 473 446 +((( 474 474 (% class="box infomessage" %) 475 475 ((( 476 -((( 477 477 **AT+MOD=3** 478 478 479 479 **ATZ** ... ... @@ -481,44 +481,54 @@ 481 481 ))) 482 482 483 483 ((( 484 -Other AT Commands for counting are similar to [[MOD2 Counting Command>>||anchor="H3.3.2AT2BMOD3D22C28DoubleDICounting29"]]. 456 +AT Commands for counting: 457 + 458 +The AT Commands for counting are similar to the [[MOD2 Counting Command>>||anchor="H3.3.2AT2BMOD3D22C28DoubleDICounting29"]]s. 485 485 ))) 486 486 487 487 488 - 489 489 === 3.3.4 AT+MOD~=4, Single DI Counting + 1 x Voltage Counting === 490 490 491 491 492 -**LT22222-L**: This mode the DI1 is used as a counting pin. 493 - 494 -The AVI1 is also used for counting. AVI1 is used to monitor the voltage. It will check the voltage **every 60s**, if voltage is higher or lower than VOLMAX mV, the AVI1 Counting increase 1, so AVI1 counting can be used to measure a machine working hour. 495 - 496 -[[image:image-20220523181903-8.png]] 497 - 498 - 499 499 ((( 500 - (% style="color:#4f81bd" %)**DIDORO**(%%)isa combinationfor RO1,RO2,DI3, DI2, DI1,DO3,DO2 andDO1. Totally 1bytes asbelow466 +**LT22222-L**: In this mode, the DI1 is used as a counting pin. 501 501 ))) 502 502 503 -[[image:image-20220523181727-7.png]] 469 +((( 470 +The AVI1 is also used for counting. It monitors the voltage and checks it every **60 seconds**. If the voltage is higher or lower than VOLMAX mV, the AVI1 count increases by 1, allowing AVI1 counting to be used to measure a machine's working hours. 504 504 505 -* RO is for relay. ROx=1 : close,ROx=0 always open. 506 -* FIRST: Indicate this is the first packet after join network. 507 -* DO is for reverse digital output. DOx=1: output low, DOx=0: high or float. 472 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 473 +|(% style="background-color:#4f81bd; color:white" %)**Size(bytes)**|(% style="background-color:#4f81bd; color:white" %)**4**|(% style="background-color:#4f81bd; color:white" %)**4**|(% style="background-color:#4f81bd; color:white" %)**1**|(% style="background-color:#4f81bd; color:white" %)**1**|(% style="background-color:#4f81bd; color:white" %)**1** 474 +|Value|COUNT1|AVI1 Counting|DIDORO*|((( 475 +Reserve 476 +)))|MOD 477 +))) 508 508 509 509 ((( 510 -(% style="color:red" %)**Note: DO3 is not valid for LT-22222-L.** 480 +(% style="color:#4f81bd" %)**DIDORO **(%%)is a combination of RO1, RO2, DI3, DI2, DI1, DO3, DO2 and DO1, for a total of 1 byte, as shown below. 481 + 482 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 483 +|**bit 7**|**bit 6**|**bit 5**|**bit 4**|**bit 3**|**bit 2**|**bit 1**|**bit 0** 484 +|RO1|RO2|FIRST|Reserve|Reserve|--DO3--|DO2|DO1 511 511 ))) 512 512 487 +* RO is for the relay. ROx=1: closed, ROx=0 always open. 488 +* FIRST: Indicates that this is the first packet after joining the network. 489 +* DO is for reverse digital output. DOx=1: output low, DOx=0: high or floating. 490 + 513 513 ((( 492 +(% style="color:red" %)**Note: DO3 bit is not valid for LT-22222-L.** 493 + 514 514 495 +))) 515 515 516 -**To use this mode, please run:** 497 +((( 498 +**To activate this mode, run the following AT commands:** 517 517 ))) 518 518 501 +((( 519 519 (% class="box infomessage" %) 520 520 ((( 521 -((( 522 522 **AT+MOD=4** 523 523 524 524 **ATZ** ... ... @@ -525,61 +525,65 @@ 525 525 ))) 526 526 ))) 527 527 528 - 529 - 530 530 ((( 531 -Other AT Commands for counting are similar to [[MOD2 Counting Command>>||anchor="H3.3.2AT2BMOD3D22C28DoubleDICounting29"]]. 511 +Other AT Commands for counting are similar to the [[MOD2 Counting Command>>||anchor="H3.3.2AT2BMOD3D22C28DoubleDICounting29"]]s. 532 532 ))) 533 533 534 534 ((( 535 - 515 +**In addition to that, below are the commands for AVI1 Counting:** 536 536 537 - **Plusbelowcommand for AVI1Counting:**517 +(% style="color:blue" %)**AT+SETCNT=3,60**(%%)** (Sets AVI Count to 60)** 538 538 539 - 540 -(% style="color:blue" %)**AT+SETCNT=3,60**(%%)** (set AVI Count to 60)** 541 - 542 542 (% style="color:blue" %)**AT+VOLMAX=20000**(%%)** (If AVI1 voltage higher than VOLMAX (20000mV =20v), counter increase 1)** 543 543 544 544 (% style="color:blue" %)**AT+VOLMAX=20000,0**(%%)** (If AVI1 voltage lower than VOLMAX (20000mV =20v), counter increase 1)** 545 545 546 -(% style="color:blue" %)**AT+VOLMAX=20000,1**(%%)** (If AVI1 voltage higer than VOLMAX (20000mV =20v), counter increase 1)** 523 +(% style="color:blue" %)**AT+VOLMAX=20000,1**(%%)** (If AVI1 voltage higher than VOLMAX (20000mV =20v), counter increase 1)** 547 547 ))) 548 548 549 549 550 - 551 551 === 3.3.5 AT+MOD~=5, Single DI Counting + 2 x AVI + 1 x ACI === 552 552 553 553 554 -**LT22222-L**: This mode the DI1 is used as a counting pin.530 +**LT22222-L**: In this mode, the DI1 is used as a counting pin. 555 555 556 -[[image:image-20220523182334-9.png]] 532 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 533 +|(% style="background-color:#4f81bd; color:white" %)**Size(bytes)**|(% style="background-color:#4f81bd; color:white" %)**2**|(% style="background-color:#4f81bd; color:white" %)**2**|(% style="background-color:#4f81bd; color:white" %)**2**|(% style="background-color:#4f81bd; color:white" %)**2**|(% style="background-color:#4f81bd; color:white" %)**1**|(% style="background-color:#4f81bd; color:white" %)**1**|(% style="background-color:#4f81bd; color:white" %)**1** 534 +|Value|((( 535 +AVI1 voltage 536 +)))|((( 537 +AVI2 voltage 538 +)))|((( 539 +ACI1 Current 540 +)))|COUNT1|DIDORO*|((( 541 +Reserve 542 +)))|MOD 557 557 558 558 ((( 559 - 545 +(% style="color:#4f81bd" %)**DIDORO**(%%) is a combination of RO1, RO2, DI3, DI2, DI1, DO3, DO2 and DO1, for a total of 1 byte, as shown below. 560 560 561 -(% style="color:#4f81bd" %)**DIDORO**(%%) is a combination for RO1, RO2, DI3, DI2, DI1, DO3, DO2 and DO1. Totally 1bytes as below 547 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 548 +|**bit 7**|**bit 6**|**bit 5**|**bit 4**|**bit 3**|**bit 2**|**bit 1**|**bit 0** 549 +|RO1|RO2|FIRST|Reserve|Reserve|DO3|DO2|DO1 562 562 ))) 563 563 564 -* RO is for relay. ROx=1 ,ROx=0 always open.565 -* FIRST: Indicate this is the first packet after join network. 552 +* RO is for the relay. ROx=1: closed, ROx=0 always open. 553 +* FIRST: Indicates that this is the first packet after joining the network. 566 566 * ((( 567 -DO is for reverse digital output. DOx=1: output low, DOx=0: high or float. 555 +DO is for reverse digital output. DOx=1: output low, DOx=0: high or floating. 568 568 ))) 569 569 570 570 ((( 571 -(% style="color:red" %)**Note: DO3 is not valid for LT-22222-L.** 559 +(% style="color:red" %)**Note: DO3 bit is not valid for LT-22222-L.** 572 572 ))) 573 573 574 574 ((( 575 - 576 - 577 -**To use this mode, please run:** 563 +**To activate this mode, run the following AT commands:** 578 578 ))) 579 579 566 +((( 580 580 (% class="box infomessage" %) 581 581 ((( 582 -((( 583 583 **AT+MOD=5** 584 584 585 585 **ATZ** ... ... @@ -587,62 +587,53 @@ 587 587 ))) 588 588 589 589 ((( 590 -Other AT Commands for counting are similar to [[MOD2 Counting Command>>||anchor="H3.3.2AT2BMOD3D22C28DoubleDICounting29"]]. 576 +Other AT Commands for counting are similar to the [[MOD2 Counting Command>>||anchor="H3.3.2AT2BMOD3D22C28DoubleDICounting29"]]s. 591 591 ))) 592 592 593 593 594 - 595 595 === 3.3.6 AT+ADDMOD~=6. (Trigger Mode, Optional) === 596 596 597 597 598 -(% style="color:#4f81bd" %)**This mode is anoptionalmode for trigger purpose. It can runtogether with other mode.**583 +(% style="color:#4f81bd" %)**This mode is optional and intended for trigger purposes. It can operate together with other modes.** 599 599 600 -For example, if u serhasconfiguredbelow commands:585 +For example, if you configured the following commands: 601 601 602 602 * **AT+MOD=1 ** **~-~->** The normal working mode 603 -* **AT+ADDMOD6=1** **~-~->** Enable trigger 588 +* **AT+ADDMOD6=1** **~-~->** Enable trigger mode 604 604 590 +The LT-22222-L will continuously monitor AV1, AV2, AC1, and AC2 every 5 seconds. LT will send uplink packets in two cases: 605 605 592 +1. Periodically uplink (Based on TDC time). The payload is the same as in normal mode (MOD=1 for the commands above). These are (% style="color:#4f81bd" %)**unconfirmed**(%%) uplinks. 593 +1. Trigger uplink when the trigger condition is met. LT will send two packets in this case. The first uplink uses the payload specified in trigger mode (MOD=6). The second packet uses the normal mode payload (MOD=1 as set above). Both are (% style="color:#4f81bd" %)**CONFIRMED uplinks.** 606 606 607 -LT will keep monitoring AV1/AV2/AC1/AC2 every 5 seconds; LT will send uplink packets in two cases: 608 - 609 -1. Periodically uplink (Base on TDC time). Payload is same as the normal MOD (MOD 1 for above command). This uplink uses LoRaWAN (% style="color:#4f81bd" %)**unconfirmed**(%%) data type 610 -1. Trigger uplink when meet the trigger condition. LT will sent two packets in this case, the first uplink use payload specify in this mod (mod=6), the second packets use the normal mod payload(MOD=1 for above settings). Both Uplinks use LoRaWAN (% style="color:#4f81bd" %)**CONFIRMED data type.** 611 - 612 - 613 - 614 - 615 615 (% style="color:#037691" %)**AT Command to set Trigger Condition**: 616 616 597 +(% style="color:#4f81bd" %)**Trigger based on voltage**: 617 617 618 -(% style="color:#4f81bd" %)**Trigger base on voltage**: 619 - 620 620 Format: AT+AVLIM=<AV1_LIMIT_LOW>,< AV1_LIMIT_HIGH>,<AV2_LIMIT_LOW>,< AV2_LIMIT_HIGH> 621 621 622 622 623 623 **Example:** 624 624 625 -AT+AVLIM=3000,6000,0,2000 ( If AVI1 voltage lower than 3vor higher than 6v.v, LT will trigger Uplink)604 +AT+AVLIM=3000,6000,0,2000 (triggers an uplink if AVI1 voltage is lower than 3V or higher than 6V, or if AV2 voltage is higher than 2V) 626 626 627 -AT+AVLIM=5000,0,0,0 ( If AVI1 voltage lower than 5V, triggeruplink,0 meansignore)606 +AT+AVLIM=5000,0,0,0 (triggers an uplink if AVI1 voltage lower than 5V. Use 0 for parameters that are not in use) 628 628 629 629 609 +(% style="color:#4f81bd" %)**Trigger based on current**: 630 630 631 -(% style="color:#4f81bd" %)**Trigger base on current**: 632 - 633 633 Format: AT+ACLIM=<AC1_LIMIT_LOW>,< AC1_LIMIT_HIGH>,<AC2_LIMIT_LOW>,< AC2_LIMIT_HIGH> 634 634 635 635 636 636 **Example:** 637 637 638 -AT+ACLIM=10000,15000,0,0 ( If ACI1 voltage lower than 10mA or higher than 15mA, trigger an uplink)616 +AT+ACLIM=10000,15000,0,0 (triggers an uplink if ACI1 voltage is lower than 10mA or higher than 15mA) 639 639 640 640 619 +(% style="color:#4f81bd" %)**Trigger based on DI status**: 641 641 642 - (%style="color:#4f81bd"%)**Triggerbaseon DI status**:621 +DI status triggers Flag. 643 643 644 -DI status trigger Flag. 645 - 646 646 Format: AT+DTRI=<DI1_TIRGGER_FlAG>,< DI2_TIRGGER_FlAG > 647 647 648 648 ... ... @@ -651,80 +651,117 @@ 651 651 AT+ DTRI =1,0 (Enable DI1 trigger / disable DI2 trigger) 652 652 653 653 631 +(% style="color:#037691" %)**LoRaWAN Downlink Commands for Setting the Trigger Conditions:** 654 654 655 -(% style="color:#037691" %)**Downlink Command to set Trigger Condition:** 656 - 657 657 Type Code: 0xAA. Downlink command same as AT Command **AT+AVLIM, AT+ACLIM** 658 658 659 659 Format: AA xx yy1 yy1 yy2 yy2 yy3 yy3 yy4 yy4 660 660 661 - AA: Code for this downlink Command: 637 + AA: Type Code for this downlink Command: 662 662 663 - xx: 0: Limit for AV1 and AV2; ,DI2 trigger enable/disable639 + xx: **0**: Limit for AV1 and AV2; **1**: limit for AC1 and AC2; **2**: DI1and DI2 trigger enable/disable. 664 664 665 - yy1 yy1: AC1 or AV1 lowlimit or DI1/DI2 trigger status.641 + yy1 yy1: AC1 or AV1 LOW limit or DI1/DI2 trigger status. 666 666 667 - yy2 yy2: AC1 or AV1 highlimit.643 + yy2 yy2: AC1 or AV1 HIGH limit. 668 668 669 - yy3 yy3: AC2 or AV2 lowlimit.645 + yy3 yy3: AC2 or AV2 LOW limit. 670 670 671 - Yy4 yy4: AC2 or AV2 highlimit.647 + Yy4 yy4: AC2 or AV2 HIGH limit. 672 672 673 673 674 -**Example1**: AA 00 13 88 00 00 00 00 00 00 650 +**Example 1**: AA 00 13 88 00 00 00 00 00 00 675 675 676 -Same as AT+AVLIM=5000,0,0,0 If AVI1 voltage lower than 5V, triggeruplink,0 meansignore)652 +Same as AT+AVLIM=5000,0,0,0 (triggers an uplink if AVI1 voltage is lower than 5V. Use 0s for parameters that are not in use) 677 677 678 678 679 -**Example2**: AA 02 01 00 655 +**Example 2**: AA 02 01 00 680 680 681 -Same as AT+ DTRI =1,0 657 +Same as AT+ DTRI =1,0 (Enable DI1 trigger / disable DI2 trigger) 682 682 683 683 684 - 685 685 (% style="color:#4f81bd" %)**Trigger Settings Payload Explanation:** 686 686 687 -MOD6 Payload payload662 +MOD6 Payload: total of 11 bytes 688 688 689 -[[image:image-20220524085923-1.png]] 664 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:515px" %) 665 +|(% style="background-color:#4f81bd; color:white; width:60px" %)**Size(bytes)**|(% style="background-color:#4f81bd; color:white; width:69px" %)**1**|(% style="background-color:#4f81bd; color:white; width:69px" %)**1**|(% style="background-color:#4f81bd; color:white; width:109px" %)**1**|(% style="background-color:#4f81bd; color:white; width:49px" %)**6**|(% style="background-color:#4f81bd; color:white; width:109px" %)**1**|(% style="background-color:#4f81bd; color:white; width:50px" %)**1** 666 +|Value|((( 667 +TRI_A FLAG 668 +)))|((( 669 +TRI_A Status 670 +)))|((( 671 +TRI_DI FLAG+STA 672 +)))|Reserve|Enable/Disable MOD6|((( 673 +MOD(6) 674 +))) 690 690 676 +(% style="color:#4f81bd" %)**TRI FLAG1**(%%) is a combination to show if the trigger is set for this part. Totally 1 byte as below 691 691 692 -(% style="color:#4f81bd" %)**TRI FLAG1**(%%) is a combination to show if trigger is set for this part. Totally 1byte as below 678 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:515px" %) 679 +|**bit 7**|**bit 6**|**bit 5**|**bit 4**|**bit 3**|**bit 2**|**bit 1**|**bit 0** 680 +|((( 681 +AV1_LOW 682 +)))|((( 683 +AV1_HIGH 684 +)))|((( 685 +AV2_LOW 686 +)))|((( 687 +AV2_HIGH 688 +)))|((( 689 +AC1_LOW 690 +)))|((( 691 +AC1_HIGH 692 +)))|((( 693 +AC2_LOW 694 +)))|((( 695 +AC2_HIGH 696 +))) 693 693 694 - [[image:image-20220524090106-2.png]]698 +* Each bit shows if the corresponding trigger has been configured. 695 695 696 -* Each bits shows if the corresponding trigger has been configured. 697 - 698 - 699 - 700 700 **Example:** 701 701 702 -10100000: Means the system has configure to use the trigger: A C1_LOW and AV2_LOW702 +10100000: Means the system has configure to use the trigger: AV1_LOW and AV2_LOW 703 703 704 704 705 +(% style="color:#4f81bd" %)**TRI Status1**(%%) is a combination to show which condition is trigger. Totally 1 byte as below 705 705 706 -(% style="color:#4f81bd" %)**TRI Status1**(%%) is a combination to show which condition is trigger. Totally 1byte as below 707 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:515px" %) 708 +|**bit 7**|**bit 6**|**bit 5**|**bit 4**|**bit 3**|**bit 2**|**bit 1**|**bit 0** 709 +|((( 710 +AV1_LOW 711 +)))|((( 712 +AV1_HIGH 713 +)))|((( 714 +AV2_LOW 715 +)))|((( 716 +AV2_HIGH 717 +)))|((( 718 +AC1_LOW 719 +)))|((( 720 +AC1_HIGH 721 +)))|((( 722 +AC2_LOW 723 +)))|((( 724 +AC2_HIGH 725 +))) 707 707 708 - [[image:image-20220524090249-3.png]]727 +* Each bit shows which status has been triggered on this uplink. 709 709 710 -* Each bits shows which status has been trigger on this uplink. 711 - 712 - 713 - 714 714 **Example:** 715 715 716 -10000000: Means this p acketis trigger by AC1_LOW.Means voltage too low.731 +10000000: Means this uplink is triggered by AV1_LOW. That means the voltage is too low. 717 717 718 718 719 - 720 720 (% style="color:#4f81bd" %)**TRI_DI FLAG+STA **(%%)is a combination to show which condition is trigger. Totally 1byte as below 721 721 722 -[[image:image-20220524090456-4.png]] 736 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:515px" %) 737 +|**bit7**|**bit6**|**bit5**|**bit4**|**bit3**|**bit2**|**bit1**|**bit0** 738 +|N/A|N/A|N/A|N/A|DI2_STATUS|DI2_FLAG|DI1_STATUS|DI1_FLAG 723 723 724 -* Each bits shows which status has been trigger on this uplink. 740 +* Each bits shows which status has been triggered on this uplink. 725 725 726 - 727 - 728 728 **Example:** 729 729 730 730 00000111: Means both DI1 and DI2 trigger are enabled and this packet is trigger by DI1. ... ... @@ -732,7 +732,6 @@ 732 732 00000101: Means both DI1 and DI2 trigger are enabled. 733 733 734 734 735 - 736 736 (% style="color:#4f81bd" %)**Enable/Disable MOD6 **(%%): 0x01: MOD6 is enable. 0x00: MOD6 is disable. 737 737 738 738 Downlink command to poll MOD6 status: ... ... @@ -742,183 +742,159 @@ 742 742 When device got this command, it will send the MOD6 payload. 743 743 744 744 745 - 746 - 747 747 === 3.3.7 Payload Decoder === 748 748 749 749 ((( 750 750 751 751 752 -**Decoder for TTN/loraserver/ChirpStack**: www.dropbox.com/sh/wtrzu7avdtkmn3z/AACK5NwOMkU9jnvf1uCMuqrVa?dl=0>>https://www.dropbox.com/sh/wtrzu7avdtkmn3z/AACK5NwOMkU9jnvf1uCMuqrVa?dl=0]]763 +**Decoder for TTN/loraserver/ChirpStack**: [[https:~~/~~/github.com/dragino/dragino-end-node-decoder>>https://github.com/dragino/dragino-end-node-decoder]] 753 753 ))) 754 754 755 755 767 +== 3.4 Configure LT via AT Commands or Downlinks == 756 756 757 -== 3.4 Configure LT via AT or Downlink == 758 758 770 +((( 771 +User can configure LT I/O Controller via AT Commands or LoRaWAN Downlinks. 772 +))) 759 759 760 -User can configure LT I/O Controller via AT Commands or LoRaWAN Downlink Commands 761 - 762 762 ((( 775 +((( 763 763 There are two kinds of Commands: 764 764 ))) 778 +))) 765 765 766 -* (% style="color: #4f81bd" %)**Common Commands**(%%): They should be available for each sensor, such as: change uplink interval, reset device. For firmware v1.5.4, user can find what common commands it supports: [[End Device AT Commands and Downlink Command>>doc:Main.End Device AT Commands and Downlink Command.WebHome]]780 +* (% style="color:blue" %)**Common Commands**(%%): They should be available for each sensor, such as: change uplink interval, reset device. For firmware v1.5.4, user can find what common commands it supports: [[End Device AT Commands and Downlink Command>>doc:Main.End Device AT Commands and Downlink Command.WebHome]] 767 767 768 -* (% style="color: #4f81bd" %)**Sensor Related Commands**(%%): These commands are special designed for LT-22222-L. User can see these commands below:782 +* (% style="color:blue" %)**Sensor Related Commands**(%%): These commands are special designed for LT-22222-L. User can see these commands below: 769 769 770 - 771 - 772 - 773 773 === 3.4.1 Common Commands === 774 774 786 +((( 787 +These commands should be available for all Dragino sensors, such as changing the uplink interval or resetting the device. For firmware v1.5.4, you can find the supported common commands under [[End Device AT Commands and Downlink Command>>doc:Main.End Device AT Commands and Downlink Command.WebHome]]. 788 +))) 775 775 776 -They should be available for each of Dragino Sensors, such as: change uplink interval, reset device. For firmware v1.5.4, user can find what common commands it supports: [[End Device AT Commands and Downlink Command>>doc:Main.End Device AT Commands and Downlink Command.WebHome]] 777 777 778 - 779 - 780 780 === 3.4.2 Sensor related commands === 781 781 782 - 783 783 ==== 3.4.2.1 Set Transmit Interval ==== 784 784 795 +Sets the uplink interval of the device. The default uplink transmission interval is 10 minutes. 785 785 786 - Setdeviceuplink interval.797 +* (% style="color:#037691" %)**AT command:** 787 787 788 - *(% style="color:#037691" %)**ATommand:**799 +(% style="color:blue" %)**AT+TDC=N** 789 789 790 - **AT+TDC=N**801 +where N is the time in milliseconds. 791 791 803 +**Example: **AT+TDC=30000. This will set the uplink interval to 30 seconds 792 792 793 -**Example: **AT+TDC=30000. Means set interval to 30 seconds 794 794 806 +* (% style="color:#037691" %)**Downlink payload (prefix 0x01):** 795 795 796 - *(% style="color:#037691" %)**DownlinkPayload(prefix0x01):**808 +(% style="color:blue" %)**0x01 aa bb cc **(%%)** ~/~/ Same as AT+TDC=0x(aa bb cc)** 797 797 798 -**0x01 aa bb cc ~/~/ Same as AT+TDC=0x(aa bb cc)** 799 799 800 800 812 +==== 3.4.2.2 Set the Work Mode (AT+MOD) ==== 801 801 802 802 803 - ==== 3.4.2.2SetWorkMode(AT+MOD) ====815 +Sets the work mode. 804 804 817 +* (% style="color:#037691" %)**AT command:**(%%) (% style="color:blue" %)**AT+MOD=N ** 805 805 806 - Set work mode.819 +Where N is the work mode. 807 807 808 -* (%style="color:#037691"%)**ATCommand:**821 +**Example**: AT+MOD=2. This will set the work mode to Double DI counting mode. 809 809 810 -**AT+MOD=N ** 811 811 824 +* (% style="color:#037691" %)**Downlink payload (prefix 0x0A):** 812 812 813 -** Example**:AT+MOD=2.SetworkmodetoDouble DI counting mode826 +(% style="color:blue" %)**0x0A aa **(%%)** ** ~/~/ Same as AT+MOD=aa 814 814 815 815 816 -* (% style="color:#037691" %)**Downlink Payload (prefix 0x0A):** 817 817 818 -**0x0A aa ** ~/~/ Same as AT+MOD=aa 819 - 820 - 821 - 822 - 823 823 ==== 3.4.2.3 Poll an uplink ==== 824 824 825 825 826 - * (%style="color:#037691"%)**ATCommand:**833 +Asks the device to send an uplink. 827 827 828 -There is no AT Command to poll uplink 835 +* (% style="color:#037691" %)**AT command:**(%%) There is no AT Command to poll uplink 829 829 837 +* (% style="color:#037691" %)**Downlink payload (prefix 0x08):** 830 830 831 - *(% style="color:#037691" %)**Downlink Payload (prefix0x08):**839 +(% style="color:blue" %)**0x08 FF **(%%)** **~/~/ Poll an uplink 832 832 833 -**0x08 FF **~/~/ Poll an uplink 834 - 835 - 836 836 **Example**: 0x08FF, ask device to send an Uplink 837 837 838 838 839 839 845 +==== 3.4.2.4 Enable/Disable Trigger Mode ==== 840 840 841 -==== 3.4.2.4 Enable Trigger Mode ==== 842 842 848 +Enable or disable the trigger mode (see also [[ADDMOD6>>||anchor="H3.3.6AT2BADDMOD3D6.28TriggerMode2COptional29"]]). 843 843 844 - Useoftriggermode,pleasecheck [[ADDMOD6>>||anchor="H3.3.6AT2BADDMOD3D6.28TriggerMode2COptional29"]]850 +* (% style="color:#037691" %)**AT Command:**(%%) (% style="color:blue" %)**AT+ADDMOD6=1 or 0** 845 845 846 - *(% style="color:#037691" %)**AT Command:**852 +(% style="color:red" %)**1:** (%%)Enable the trigger mode 847 847 848 - **AT+ADDMOD6=1or 0**854 +(% style="color:red" %)**0: **(%%)Disable the trigger mode 849 849 850 -1: Enable Trigger Mode 851 851 852 -0: Disable Trigger Mode 853 - 854 - 855 855 * (% style="color:#037691" %)**Downlink Payload (prefix 0x0A 06):** 856 856 857 -**0x0A 06 aa ** ~/~/ Same as AT+ADDMOD6=aa 859 +(% style="color:blue" %)**0x0A 06 aa **(%%) ~/~/ Same as AT+ADDMOD6=aa 858 858 859 859 860 860 861 - 862 862 ==== 3.4.2.5 Poll trigger settings ==== 863 863 864 864 865 -Poll trigger settings ,866 +Polls the trigger settings 866 866 867 867 * (% style="color:#037691" %)**AT Command:** 868 868 869 869 There is no AT Command for this feature. 870 870 871 - 872 872 * (% style="color:#037691" %)**Downlink Payload (prefix 0x AB 06):** 873 873 874 -**0xAB 06 ,device will uplink trigger settings once receive this command874 +(% style="color:blue" %)**0xAB 06 ** (%%) ~/~/ Poll the trigger settings. Device will uplink trigger settings once receive this command 875 875 876 876 877 877 878 - 879 879 ==== 3.4.2.6 Enable / Disable DI1/DI2/DI3 as trigger ==== 880 880 881 881 882 -Enable Disable DI1/DI2/DI2 as trigger, 881 +Enable or Disable DI1/DI2/DI2 as trigger, 883 883 884 -* (% style="color:#037691" %)**AT Command:** 883 +* (% style="color:#037691" %)**AT Command:**(%%) (% style="color:blue" %)**Format: AT+DTRI=<DI1_TIRGGER_FlAG>,< DI2_TIRGGER_FlAG >** 885 885 886 -** Format:<DI1_TIRGGER_FlAG>,<DI2_TIRGGER_FlAG>**885 +**Example:** AT+ DTRI =1,0 (Enable DI1 trigger / disable DI2 trigger) 887 887 888 888 889 -**Example:** 890 - 891 -AT+ DTRI =1,0 (Enable DI1 trigger / disable DI2 trigger) 892 - 893 893 * (% style="color:#037691" %)**Downlink Payload (prefix 0xAA 02):** 894 894 895 -**0xAA 02 aa bb 890 +(% style="color:blue" %)**0xAA 02 aa bb ** (%%) ~/~/ Same as AT+DTRI=aa,bb 896 896 897 897 898 898 899 - 900 900 ==== 3.4.2.7 Trigger1 – Set DI1 or DI3 as trigger ==== 901 901 902 902 903 903 Set DI1 or DI3(for LT-33222-L) trigger. 904 904 905 -* (% style="color:#037691" %)**AT Command:** 899 +* (% style="color:#037691" %)**AT Command:**(%%) (% style="color:blue" %)**AT+TRIG1=a,b** 906 906 907 -** AT+TRIG1=a,b**901 +(% style="color:red" %)**a :** (%%)Interrupt mode. 0: falling edge; 1: rising edge, 2: falling and raising edge(for MOD=1). 908 908 909 - a: Interrupt mode. 0: falling edge; 1:isingedge,2:fallingandraisingedge(for MOD=1).903 +(% style="color:red" %)**b :** (%%)delay timing. 910 910 911 - b:delaytiming.905 +**Example:** AT+TRIG1=1,100(set DI1 port to trigger on high level, valid signal is 100ms ) 912 912 913 913 914 -**Example:** 915 - 916 -AT+TRIG1=1,100(set DI1 port to trigger on high level, valid signal is 100ms ) 917 - 918 - 919 919 * (% style="color:#037691" %)**Downlink Payload (prefix 0x09 01 ):** 920 -* **0x09 01 aa bb cc ** ~/~/ same as AT+TRIG1=aa,0x(bb cc) 921 921 910 +(% style="color:blue" %)**0x09 01 aa bb cc ** (%%) ~/~/ same as AT+TRIG1=aa,0x(bb cc) 922 922 923 923 924 924 ... ... @@ -925,87 +925,66 @@ 925 925 ==== 3.4.2.8 Trigger2 – Set DI2 as trigger ==== 926 926 927 927 928 -Set DI2 trigger. 917 +Sets DI2 trigger. 929 929 930 -* (% style="color:#037691" %)**AT Command:** 919 +* (% style="color:#037691" %)**AT Command:**(%%) (% style="color:blue" %)**AT+TRIG2=a,b** 931 931 932 -** AT+TRIG2=a,b**921 +(% style="color:red" %)**a :** (%%)Interrupt mode. 0: falling edge; 1: rising edge, 2: falling and raising edge (for MOD=1). 933 933 923 +(% style="color:red" %)**b :** (%%)delay timing. 934 934 935 -a nterruptmode.0: fallingedge; 1:risingedge,2: falling andraisingedge(forMOD=1).925 +**Example:** AT+TRIG2=0,100 (set DI1 port to trigger on low level, valid signal is 100ms ) 936 936 937 -b : delay timing. 938 938 939 - 940 -**Example:** 941 - 942 -AT+TRIG2=0,100(set DI1 port to trigger on low level, valid signal is 100ms ) 943 - 944 - 945 945 * (% style="color:#037691" %)**Downlink Payload (prefix 0x09 02 ):** 946 946 947 -**0x09 02 aa bb cc 1=aa,0x(bb cc)930 +(% style="color:blue" %)**0x09 02 aa bb cc ** (%%)~/~/ same as AT+TRIG2=aa,0x(bb cc) 948 948 949 949 950 950 951 - 952 952 ==== 3.4.2.9 Trigger – Set AC (current) as trigger ==== 953 953 954 954 955 955 Set current trigger , base on AC port. See [[trigger mode>>||anchor="H3.3.6AT2BADDMOD3D6.28TriggerMode2COptional29"]] 956 956 957 -* (% style="color:#037691" %)**AT Command** 939 +* (% style="color:#037691" %)**AT Command:**(%%) (% style="color:blue" %)**AT+ACLIM** 958 958 959 -**AT+ACLIM** 960 - 961 - 962 962 * (% style="color:#037691" %)**Downlink Payload (prefix 0xAA 01 )** 963 963 964 -**0x AA 01 aa bb cc dd ee ff gg hh ** ~/~/ same as AT+ACLIM See [[trigger mode>>||anchor="H3.3.6AT2BADDMOD3D6.28TriggerMode2COptional29"]] 943 +(% style="color:blue" %)**0x AA 01 aa bb cc dd ee ff gg hh ** (%%) ~/~/ same as AT+ACLIM See [[trigger mode>>||anchor="H3.3.6AT2BADDMOD3D6.28TriggerMode2COptional29"]] 965 965 966 966 967 967 968 - 969 969 ==== 3.4.2.10 Trigger – Set AV (voltage) as trigger ==== 970 970 971 971 972 972 Set current trigger , base on AV port. See [[trigger mode>>||anchor="H3.3.6AT2BADDMOD3D6.28TriggerMode2COptional29"]] 973 973 974 -* (% style="color:#037691" %)**AT Command** 952 +* (% style="color:#037691" %)**AT Command**(%%): (% style="color:blue" %)**AT+AVLIM **(%%)** See [[trigger mode>>||anchor="H3.3.6AT2BADDMOD3D6.28TriggerMode2COptional29"]]** 975 975 976 -**AT+AVLIM See [[trigger mode>>||anchor="H3.3.6AT2BADDMOD3D6.28TriggerMode2COptional29"]]** 977 - 978 - 979 979 * (% style="color:#037691" %)**Downlink Payload (prefix 0xAA 00 )** 980 980 981 -**0x AA 00 aa bb cc dd ee ff gg hh ** ~/~/ same as AT+AVLIM See [[trigger mode>>||anchor="H3.3.6AT2BADDMOD3D6.28TriggerMode2COptional29"]] 956 +(% style="color:blue" %)**0x AA 00 aa bb cc dd ee ff gg hh ** (%%) ~/~/ same as AT+AVLIM See [[trigger mode>>||anchor="H3.3.6AT2BADDMOD3D6.28TriggerMode2COptional29"]] 982 982 983 983 984 984 985 - 986 986 ==== 3.4.2.11 Trigger – Set minimum interval ==== 987 987 988 988 989 -Set AV and AC trigger minimum interval ,systemwon't response to the second trigger within this set time after the first trigger.963 +Sets AV and AC trigger minimum interval. Device won't response to the second trigger within this set time after the first trigger. 990 990 991 -* (% style="color:#037691" %)**AT Command** 965 +* (% style="color:#037691" %)**AT Command**(%%): (% style="color:blue" %)**AT+ATDC=5 ** ~/~/ (%%)Device won't response the second trigger within 5 minute after the first trigger. 992 992 993 -**AT+ATDC=5 ** Device won't response the second trigger within 5 minute after the first trigger. 994 - 995 - 996 996 * (% style="color:#037691" %)**Downlink Payload (prefix 0xAC )** 997 997 998 -**0x AC aa bb ** ~/~/ same as AT+ATDC=0x(aa bb) . Unit (min) 969 +(% style="color:blue" %)**0x AC aa bb **(%%) ~/~/ same as AT+ATDC=0x(aa bb) . Unit (min) 999 999 1000 1000 ((( 1001 - 1002 - 1003 1003 (% style="color:red" %)**Note: ATDC setting must be more than 5min** 1004 1004 ))) 1005 1005 1006 1006 1007 1007 1008 - 1009 1009 ==== 3.4.2.12 DO ~-~- Control Digital Output DO1/DO2/DO3 ==== 1010 1010 1011 1011 ... ... @@ -1015,8 +1015,9 @@ 1015 1015 1016 1016 1017 1017 * (% style="color:#037691" %)**Downlink Payload (prefix 0x02)** 1018 -* **0x02 aa bb cc **~/~/ Set DO1/DO2/DO3 output 1019 1019 987 +(% style="color:blue" %)**0x02 aa bb cc ** (%%)~/~/ Set DO1/DO2/DO3 output 988 + 1020 1020 ((( 1021 1021 If payload = 0x02010001, while there is load between V+ and DOx, it means set DO1 to low, DO2 to high and DO3 to low. 1022 1022 ))) ... ... @@ -1023,10 +1023,14 @@ 1023 1023 1024 1024 ((( 1025 1025 01: Low, 00: High , 11: No action 995 + 996 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 997 +|(% style="background-color:#4f81bd; color:white" %)**Downlink Code**|(% style="background-color:#4f81bd; color:white" %)**DO1**|(% style="background-color:#4f81bd; color:white" %)**DO2**|(% style="background-color:#4f81bd; color:white" %)**DO3** 998 +|02 01 00 11|Low|High|No Action 999 +|02 00 11 01|High|No Action|Low 1000 +|02 11 01 00|No Action|Low|High 1026 1026 ))) 1027 1027 1028 -[[image:image-20220524092754-5.png]] 1029 - 1030 1030 ((( 1031 1031 (% style="color:red" %)**Note: For LT-22222-L, there is no DO3, the last byte can use any value.** 1032 1032 ))) ... ... @@ -1037,7 +1037,6 @@ 1037 1037 1038 1038 1039 1039 1040 - 1041 1041 ==== 3.4.2.13 DO ~-~- Control Digital Output DO1/DO2/DO3 with time control ==== 1042 1042 1043 1043 ... ... @@ -1048,7 +1048,7 @@ 1048 1048 1049 1049 * (% style="color:#037691" %)**Downlink Payload (prefix 0xA9)** 1050 1050 1051 -**0xA9 aa bb cc **~/~/ Set DO1/DO2/DO3 output with time control 1023 +(% style="color:blue" %)**0xA9 aa bb cc **(%%) ~/~/ Set DO1/DO2/DO3 output with time control 1052 1052 1053 1053 1054 1054 This is to control the digital output time of DO pin. Include four bytes: ... ... @@ -1064,23 +1064,37 @@ 1064 1064 1065 1065 (% style="color:#4f81bd" %)**Third Byte**(%%): Control Method and Ports status: 1066 1066 1067 -[[image:image-20220524093238-6.png]] 1039 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:300px" %) 1040 +|(% style="background-color:#4f81bd; color:white" %)**Second Byte**|(% style="background-color:#4f81bd; color:white" %)**Status** 1041 +|0x01|DO1 set to low 1042 +|0x00|DO1 set to high 1043 +|0x11|DO1 NO Action 1068 1068 1069 - 1070 1070 (% style="color:#4f81bd" %)**Fourth Byte**(%%): Control Method and Ports status: 1071 1071 1072 -[[image:image-20220524093328-7.png]] 1047 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:300px" %) 1048 +|(% style="background-color:#4f81bd; color:white" %)**Second Byte**|(% style="background-color:#4f81bd; color:white" %)**Status** 1049 +|0x01|DO2 set to low 1050 +|0x00|DO2 set to high 1051 +|0x11|DO2 NO Action 1073 1073 1074 - 1075 1075 (% style="color:#4f81bd" %)**Fifth Byte**(%%): Control Method and Ports status: 1076 1076 1077 -[[image:image-20220524093351-8.png]] 1055 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:300px" %) 1056 +|(% style="background-color:#4f81bd; color:white" %)**Second Byte**|(% style="background-color:#4f81bd; color:white" %)**Status** 1057 +|0x01|DO3 set to low 1058 +|0x00|DO3 set to high 1059 +|0x11|DO3 NO Action 1078 1078 1061 +(% style="color:#4f81bd" %)**Sixth and Seventh and Eighth and Ninth Byte**:(%%) Latching time. Unit: ms 1079 1079 1080 -(% style="color:#4f81bd" %)**Sixth and Seventh and Eighth and Ninth Byte**: 1081 1081 1082 - Latching time.Unit:ms1064 +(% style="color:red" %)**Note: ** 1083 1083 1066 + Since Firmware v1.6.0, the latch time support 4 bytes and 2 bytes 1067 + 1068 + Before Firmwre v1.6.0 the latch time only suport 2 bytes. 1069 + 1084 1084 (% style="color:red" %)**Device will upload a packet if downlink code executes successfully.** 1085 1085 1086 1086 ... ... @@ -1104,7 +1104,6 @@ 1104 1104 1105 1105 1106 1106 1107 - 1108 1108 ==== 3.4.2.14 Relay ~-~- Control Relay Output RO1/RO2 ==== 1109 1109 1110 1110 ... ... @@ -1115,7 +1115,7 @@ 1115 1115 1116 1116 * (% style="color:#037691" %)**Downlink Payload (prefix 0x03):** 1117 1117 1118 -**0x03 aa bb **~/~/ Set RO1/RO2 output 1103 +(% style="color:blue" %)**0x03 aa bb ** (%%)~/~/ Set RO1/RO2 output 1119 1119 1120 1120 1121 1121 ((( ... ... @@ -1123,11 +1123,18 @@ 1123 1123 ))) 1124 1124 1125 1125 ((( 1126 -01: Close , 00: Open , 11: No action 1127 -))) 1111 +00: Closed , 01: Open , 11: No action 1128 1128 1129 -((( 1130 -[[image:image-20220524093724-9.png]] 1113 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:320px" %) 1114 +|(% style="background-color:#4f81bd; color:white" %)**Downlink Code**|(% style="background-color:#4f81bd; color:white" %)**RO1**|(% style="background-color:#4f81bd; color:white" %)**RO2** 1115 +|03 00 11|Open|No Action 1116 +|03 01 11|Close|No Action 1117 +|03 11 00|No Action|Open 1118 +|03 11 01|No Action|Close 1119 +|03 00 00|Open|Open 1120 +|03 01 01|Close|Close 1121 +|03 01 00|Close|Open 1122 +|03 00 01|Open|Close 1131 1131 ))) 1132 1132 1133 1133 (% style="color:red" %)**Device will upload a packet if downlink code executes successfully.** ... ... @@ -1134,7 +1134,6 @@ 1134 1134 1135 1135 1136 1136 1137 - 1138 1138 ==== 3.4.2.15 Relay ~-~- Control Relay Output RO1/RO2 with time control ==== 1139 1139 1140 1140 ... ... @@ -1145,7 +1145,7 @@ 1145 1145 1146 1146 * (% style="color:#037691" %)**Downlink Payload (prefix 0x05):** 1147 1147 1148 -**0x05 aa bb cc dd **~/~/ Set RO1/RO2 relay with time control 1139 +(% style="color:blue" %)**0x05 aa bb cc dd ** (%%)~/~/ Set RO1/RO2 relay with time control 1149 1149 1150 1150 1151 1151 This is to control the relay output time of relay. Include four bytes: ... ... @@ -1161,17 +1161,25 @@ 1161 1161 1162 1162 (% style="color:#4f81bd" %)**Third Byte(bb)**(%%): Control Method and Ports status: 1163 1163 1164 -[[image:image-2022 0714135731-1.png||height="406" width="627"]]1155 +[[image:image-20221008095908-1.png||height="364" width="564"]] 1165 1165 1166 1166 1167 1167 (% style="color:#4f81bd" %)**Fourth/Fifth/Sixth/Seventh Bytes(cc)**(%%): Latching time. Unit: ms 1168 1168 1160 + 1161 +(% style="color:red" %)**Note:** 1162 + 1163 + Since Firmware v1.6.0, the latch time support 4 bytes and 2 bytes 1164 + 1165 + Before Firmwre v1.6.0 the latch time only suport 2 bytes. 1166 + 1167 + 1169 1169 (% style="color:red" %)**Device will upload a packet if downlink code executes successfully.** 1170 1170 1171 1171 1172 1172 **Example payload:** 1173 1173 1174 -**~1. 05 01 11 07 D** 1173 +**~1. 05 01 11 07 D0** 1175 1175 1176 1176 Relay1 and Relay 2 will be set to NC , last 2 seconds, then change back to original state. 1177 1177 ... ... @@ -1194,163 +1194,142 @@ 1194 1194 1195 1195 When voltage exceed the threshold, count. Feature see [[MOD4>>||anchor="H3.3.4AT2BMOD3D42CSingleDICounting2B1xVoltageCounting"]] 1196 1196 1197 -* (% style="color:#037691" %)**AT Command:** 1196 +* (% style="color:#037691" %)**AT Command:**(%%) (% style="color:blue" %)**AT+VOLMAX ** (%%)~/~/ See [[MOD4>>||anchor="H3.3.4AT2BMOD3D42CSingleDICounting2B1xVoltageCounting"]] 1198 1198 1199 -**AT+VOLMAX ** ~/~/ See [[MOD4>>||anchor="H3.3.4AT2BMOD3D42CSingleDICounting2B1xVoltageCounting"]] 1200 - 1201 - 1202 1202 * (% style="color:#037691" %)**Downlink Payload (prefix 0xA5):** 1203 1203 1204 -**0xA5 aa bb cc **~/~/ Same as AT+VOLMAX=(aa bb),cc 1200 +(% style="color:blue" %)**0xA5 aa bb cc ** (%%)~/~/ Same as AT+VOLMAX=(aa bb),cc 1205 1205 1206 1206 1207 1207 1208 - 1209 1209 ==== 3.4.2.17 Counting ~-~- Pre-configure the Count Number ==== 1210 1210 1211 1211 1212 -* (% style="color:#037691" %)**AT Command:** 1207 +* (% style="color:#037691" %)**AT Command:**(%%) (% style="color:blue" %)**AT+SETCNT=aa,(bb cc dd ee) ** 1213 1213 1214 -** AT+SETCNT=aa,(bbccddee)**1209 +(% style="color:red" %)**aa:**(%%) 1: Set count1; 2: Set count2; 3: Set AV1 count 1215 1215 1216 - aa:1:Setcount1,1211 +(% style="color:red" %)**bb cc dd ee: **(%%)number to be set 1217 1217 1218 -2: Set count2, 1219 1219 1220 -3: Set AV1 count 1221 - 1222 -Bb cc dd ee: number to be set 1223 - 1224 - 1225 1225 * (% style="color:#037691" %)**Downlink Payload (prefix 0xA8):** 1226 1226 1227 -**0x A8 aa bb cc dd ee **~/~/ same as AT+SETCNT=aa,(bb cc dd ee) 1216 +(% style="color:blue" %)**0x A8 aa bb cc dd ee ** (%%)~/~/ same as AT+SETCNT=aa,(bb cc dd ee) 1228 1228 1229 1229 1230 1230 1231 - 1232 1232 ==== 3.4.2.18 Counting ~-~- Clear Counting ==== 1233 1233 1234 1234 1235 1235 Clear counting for counting mode 1236 1236 1237 -* (% style="color:#037691" %)**AT Command:** 1225 +* (% style="color:#037691" %)**AT Command:**(%%) (% style="color:blue" %)**AT+CLRCOUNT **(%%) ~/~/ clear all counting 1238 1238 1239 -**AT+CLRCOUNT ** ~/~/ clear all counting 1240 - 1241 - 1242 1242 * (% style="color:#037691" %)**Downlink Payload (prefix 0xA6):** 1243 1243 1244 -**0x A6 01 ** ~/~/ clear all counting 1229 +(% style="color:blue" %)**0x A6 01 ** (%%)~/~/ clear all counting 1245 1245 1246 1246 1247 1247 1233 +==== 3.4.2.19 Counting ~-~- Change counting mode to save time ==== 1248 1248 1249 -==== 3.4.2.19 Counting ~-~- Change counting mode save time ==== 1250 1250 1251 - 1252 1252 * (% style="color:#037691" %)**AT Command:** 1253 1253 1254 -**AT+COUTIME=60 **~/~/ Set save time to 60 seconds. Device will save the counting result in internal flash every 60 seconds. (min value: 30) 1238 +(% style="color:blue" %)**AT+COUTIME=60 **(%%)~/~/ Set save time to 60 seconds. Device will save the counting result in internal flash every 60 seconds. (min value: 30) 1255 1255 1256 1256 1257 1257 * (% style="color:#037691" %)**Downlink Payload (prefix 0xA7):** 1258 1258 1259 -**0x A7 aa bb cc **~/~/ same as AT+COUTIME =aa bb cc, 1243 +(% style="color:blue" %)**0x A7 aa bb cc ** (%%)~/~/ same as AT+COUTIME =aa bb cc, 1260 1260 1261 1261 ((( 1262 1262 range: aa bb cc:0 to 16777215, (unit:second) 1247 +))) 1263 1263 1264 1264 1265 1265 1266 - 1267 -))) 1251 +==== 3.4.2.20 Reset save RO DO state ==== 1268 1268 1269 -==== 3.4.2.20 Reset save DR DO state ==== 1270 1270 1271 - 1272 1272 * (% style="color:#037691" %)**AT Command:** 1273 1273 1274 -**AT+RODORET=1 **~/~/ RODO will close when the device joining the network. (default) 1256 +(% style="color:blue" %)**AT+RODORESET=1 **(%%)~/~/ RODO will close when the device joining the network. (default) 1275 1275 1276 -**AT+RODORET=0 **~/~/After the device is reset, the previously saved RODO state (only MOD2 to MOD5) is read, and its state is not changed when it is reconnected to the network. 1258 +(% style="color:blue" %)**AT+RODORESET=0 **(%%)~/~/ After the device is reset, the previously saved RODO state (only MOD2 to MOD5) is read, and its state is not changed when it is reconnected to the network. 1277 1277 1278 1278 1279 1279 * (% style="color:#037691" %)**Downlink Payload (prefix 0xAD):** 1280 1280 1281 -**0x AD aa **~/~/ same as AT+RODORET =aa 1263 +(% style="color:blue" %)**0x AD aa ** (%%)~/~/ same as AT+RODORET =aa 1282 1282 1283 -((( 1284 - 1285 1285 1286 1286 1287 - 1288 1288 ==== 3.4.2.21 Encrypted payload ==== 1289 1289 1290 1290 1291 1291 * (% style="color:#037691" %)**AT Command:** 1292 1292 1293 -**AT+DECRYPT=1 **~/~/ The payload is uploaded without encryption 1272 +(% style="color:blue" %)**AT+DECRYPT=1 ** (%%)~/~/ The payload is uploaded without encryption 1294 1294 1295 -**AT+DECRYPT=0 **~/~/Encrypt when uploading payload (default) 1274 +(% style="color:blue" %)**AT+DECRYPT=0 **(%%)~/~/ Encrypt when uploading payload (default) 1296 1296 1297 1297 1298 1298 1299 - 1300 1300 ==== 3.4.2.22 Get sensor value ==== 1301 1301 1302 1302 1303 1303 * (% style="color:#037691" %)**AT Command:** 1304 1304 1305 -**AT+GETSENSORVALUE=0 **~/~/ The serial port gets the reading of the current sensor 1283 +(% style="color:blue" %)**AT+GETSENSORVALUE=0 **(%%)~/~/ The serial port gets the reading of the current sensor 1306 1306 1307 -**AT+GETSENSORVALUE=1 **~/~/The serial port gets the current sensor reading and uploads it. 1285 +(% style="color:blue" %)**AT+GETSENSORVALUE=1 **(%%)~/~/ The serial port gets the current sensor reading and uploads it. 1308 1308 1309 1309 1310 1310 1311 - 1312 1312 ==== 3.4.2.23 Resets the downlink packet count ==== 1313 1313 1314 1314 1315 1315 * (% style="color:#037691" %)**AT Command:** 1316 1316 1317 -**AT+DISFCNTCHECK=0 **~/~/ When the downlink packet count sent by the server is less than the node downlink packet count or exceeds 16384, the node will no longer receive downlink packets (default) 1294 +(% style="color:blue" %)**AT+DISFCNTCHECK=0 **(%%)~/~/ When the downlink packet count sent by the server is less than the node downlink packet count or exceeds 16384, the node will no longer receive downlink packets (default) 1318 1318 1319 -**AT+DISFCNTCHECK=1 **~/~/When the downlink packet count sent by the server is less than the node downlink packet count or exceeds 16384, the node resets the downlink packet count and keeps it consistent with the server downlink packet count. 1296 +(% style="color:blue" %)**AT+DISFCNTCHECK=1 **(%%)~/~/ When the downlink packet count sent by the server is less than the node downlink packet count or exceeds 16384, the node resets the downlink packet count and keeps it consistent with the server downlink packet count. 1320 1320 1321 1321 1322 1322 1323 - 1324 1324 ==== 3.4.2.24 When the limit bytes are exceeded, upload in batches ==== 1325 1325 1326 1326 1327 1327 * (% style="color:#037691" %)**AT Command:** 1328 1328 1329 - 1305 +(% style="color:blue" %)**AT+DISMACANS=0** (%%) ~/~/ When the MACANS of the reply server plus the payload exceeds the maximum number of bytes of 11 bytes (DR0 of US915, DR2 of AS923, DR2 of AU195), the node will send a packet with a payload of 00 and a port of 4. (default) 1330 1330 1331 - 1307 +(% style="color:blue" %)**AT+DISMACANS=1** (%%) ~/~/ When the MACANS of the reply server plus the payload exceeds the maximum number of bytes of the DR, the node will ignore the MACANS and not reply, and only upload the payload part. 1332 1332 1333 1333 1334 1334 * (% style="color:#037691" %)**Downlink Payload **(%%)**:** 1335 1335 1336 -**0x21 00 01 ** ~/~/ Set the DISMACANS=1 1312 +(% style="color:blue" %)**0x21 00 01 ** (%%) ~/~/ Set the DISMACANS=1 1337 1337 1338 1338 1339 1339 1340 - 1341 1341 ==== 3.4.2.25 Copy downlink to uplink ==== 1342 1342 1343 1343 1344 1344 * (% style="color:#037691" %)**AT Command**(%%)**:** 1345 1345 1346 - 1321 +(% style="color:blue" %)**AT+RPL=5** (%%) ~/~/ After receiving the package from the server, it will immediately upload the content of the package to the server, the port number is 100. 1347 1347 1348 1348 Example:**aa xx xx xx xx** ~/~/ aa indicates whether the configuration has changed, 00 is yes, 01 is no; xx xx xx xx are the bytes sent. 1349 1349 1325 + 1350 1350 [[image:http://wiki.dragino.com/xwiki/bin/download/Main/User%20Manual%20for%20LoRaWAN%20End%20Nodes/LSN50%20%26%20LSN50-V2%20-%20LoRaWAN%20Sensor%20Node%20User%20Manual/WebHome/image-20220823173747-6.png?width=1124&height=165&rev=1.1||alt="image-20220823173747-6.png"]] 1351 1351 1352 1352 For example, sending 11 22 33 44 55 66 77 will return invalid configuration 00 11 22 33 44 55 66 77. 1353 1353 1330 + 1331 + 1354 1354 [[image:http://wiki.dragino.com/xwiki/bin/download/Main/User%20Manual%20for%20LoRaWAN%20End%20Nodes/LSN50%20%26%20LSN50-V2%20-%20LoRaWAN%20Sensor%20Node%20User%20Manual/WebHome/image-20220823173833-7.png?width=1124&height=149&rev=1.1||alt="image-20220823173833-7.png"]] 1355 1355 1356 1356 For example, if 01 00 02 58 is issued, a valid configuration of 01 01 00 02 58 will be returned. ... ... @@ -1363,7 +1363,7 @@ 1363 1363 * ((( 1364 1364 (% style="color:#037691" %)**Downlink Payload**(%%)**:** 1365 1365 1366 -**26 01 ** ~/~/ Downlink 26 01 can query device upload frequency, frequency band, software version number, TDC time. 1344 +(% style="color:blue" %)**26 01 ** (%%) ~/~/ Downlink 26 01 can query device upload frequency, frequency band, software version number, TDC time. 1367 1367 1368 1368 1369 1369 ))) ... ... @@ -1373,81 +1373,131 @@ 1373 1373 [[image:http://wiki.dragino.com/xwiki/bin/download/Main/User%20Manual%20for%20LoRaWAN%20End%20Nodes/LSN50%20%26%20LSN50-V2%20-%20LoRaWAN%20Sensor%20Node%20User%20Manual/WebHome/image-20220823173929-8.png?width=1205&height=76&rev=1.1||alt="image-20220823173929-8.png"]] 1374 1374 1375 1375 1376 - 1377 -))) 1354 +== 3.5 Integrating with ThingsEye.io == 1378 1378 1379 - ==3.5Integrate withMydevice==1356 +If you are using one of The Things Stack plans, you can integrate ThingsEye.io with your application. Once integrated, ThingsEye.io works as an MQTT client for The Things Stack MQTT broker, allowing it to subscribe to upstream traffic and publish downlink traffic. 1380 1380 1358 +=== 3.5.1 Configuring MQTT Connection Information with The Things Stack Sandbox === 1381 1381 1382 -Mydevices provides a human friendly interface to show the sensor data, once we have data in TTN, we can use Mydevices to connect to TTN and see the data in Mydevices. Below are the steps: 1360 +* In **The Things Stack Sandbox**, select your application under **Applications**. 1361 +* Select **MQTT** under **Integrations**. 1362 +* In the **Connection information **section, for **Username**, The Things Stack displays an auto-generated username. You can use it or provide a new one. 1363 +* For the **Password**, click the **Generate new API key** button to generate a password. You can see it by clicking on the **eye** button. 1383 1383 1384 -((( 1385 -(% style="color:blue" %)**Step 1**(%%): Be sure that your device is programmed and properly connected to the network at this time. 1386 -))) 1365 +[[image:tts-mqtt-integration.png||height="625" width="1000"]] 1387 1387 1388 -((( 1389 -(% style="color:blue" %)**Step 2**(%%): To configure the Application to forward data to Mydevices you will need to add integration. To add the Mydevices integration, perform the following steps: 1367 +=== 3.5.2 Configuring ThingsEye.io === 1390 1390 1391 - 1392 -))) 1369 +* Login to your [[ThingsEye.io >>https://thingseye.io]]account. 1370 +* Under the **Integrations center**, click **Integrations**. 1371 +* Click the **Add integration** button (the button with the **+** symbol). 1393 1393 1394 -[[image:i mage-20220719105525-1.png||height="377" width="677"]]1373 +[[image:thingseye-io-step-1.png||height="625" width="1000"]] 1395 1395 1396 1396 1376 +On the **Add integration** window, configure the following: 1397 1397 1398 - [[image:image-20220719110247-2.png||height="388"width="683"]]1378 +~1. **Basic settings:** 1399 1399 1380 +* Select **The Things Stack Community** from the **Integration type** list. 1381 +* Enter a suitable name for your integration in the **Name **text** **box or keep the default name. 1382 +* Ensure the following options are turned on. 1383 +** Enable integration 1384 +** Debug mode 1385 +** Allow create devices or assets 1386 +* Click the **Next** button. you will be navigated to the **Uplink data converter** tab. 1400 1400 1401 - (% style="color:blue" %)**Step 3**(%%): Createanaccount or lognMydevices.1388 +[[image:thingseye-io-step-2.png||height="625" width="1000"]] 1402 1402 1403 -(% style="color:blue" %)**Step 4**(%%): Search LT-22222-L(for both LT-22222-L / LT-33222-L) and add DevEUI.(% style="display:none" %) 1404 1404 1405 - SearchunderThethingsnetwork1391 +2. **Uplink data converter:** 1406 1406 1407 -[[image:1653356838789-523.png||height="337" width="740"]] 1393 +* Click the **Create new** button if it is not selected by default. 1394 +* Enter a suitable name for the uplink data converter in the **Name **text** **box or keep the default name. 1395 +* Click the **JavaScript** button. 1396 +* Paste the uplink decoder function into the text area (first, delete the default code). The demo decoder function can be found [[here>>https://raw.githubusercontent.com/ThingsEye-io/te-platform/refs/heads/main/Data%20Converters/The_Things_Network_MQTT_Uplink_Converter.js]]. 1397 +* Click the **Next** button. You will be navigated to the **Downlink data converter **tab. 1408 1408 1399 +[[image:thingseye-io-step-3.png||height="625" width="1000"]] 1409 1409 1401 +3.** Downlink data converter (this is an optional step):** 1410 1410 1411 -After added, the sensor data arrive TTN, it will also arrive and show in Mydevices. 1403 +* Click the **Create new** button if it is not selected by default. 1404 +* Enter a suitable name for the downlink data converter in the **Name **text** **box or keep the default name 1405 +* Click the **JavaScript** button. 1406 +* Paste the downlink decoder function into the text area (first, delete the default code). The demo decoder function can be found here. 1407 +* Click the **Next** button. You will be navigated to the **Connection** tab. 1412 1412 1413 -[[image:i mage-20220524094909-1.png||height="335" width="729"]]1409 +[[image:thingseye-io-step-4.png||height="625" width="1000"]] 1414 1414 1411 +4. **Connection:** 1415 1415 1416 -[[image:image-20220524094909-2.png||height="337" width="729"]] 1413 +* Choose **Region** from the **Host type**. 1414 +* Enter the **cluster** of your **The Things Stack** in the **Region** textbox. You can find the cluster in the url (e.g., https:~/~/**eu1**.cloud.thethings.network/...). 1415 +* Enter the **Username** and **Password** of the MQTT integration in the **Credentials** section. The username and password can be found on the MQTT integration page of your The Things Stack account (see Configuring MQTT Connection information with The Things Stack Sandbox). 1416 +* Click the **Check connection** button to test the connection. If the connection is successful, you can see the message saying **Connected**. 1417 +* Click the **Add** button. 1417 1417 1419 +[[image:thingseye-io-step-5.png||height="625" width="1000"]] 1418 1418 1419 -[[image:image-20220524094909-3.png||height="338" width="727"]] 1420 1420 1422 +Your integration is added to the** Integrations** list and it will display on the **Integrations** page. Check whether the status is showing as 'Active'. if not, check your configuration settings again. 1421 1421 1422 -[[image:i mage-20220524094909-4.png||height="339" width="728"]](% style="display:none" %)1424 +[[image:thingseye-io-step-6.png||height="625" width="1000"]] 1423 1423 1424 1424 1425 - [[image:image-20220524094909-5.png||height="341" width="734"]]1427 +Viewing integration details: 1426 1426 1429 +Click on the your integration from the list. The Integration details window will appear with the Details tab selected. The Details tab shows all the settings you have provided for this integration. 1427 1427 1431 +[add image here] 1428 1428 1429 - ==3.6InterfaceDetail==1433 +If you want to edit the settings you have provided, click on the Toggle edit mode button. 1430 1430 1435 +[add image here] 1431 1431 1437 +Once you have done click on the Apply changes button. 1438 + 1439 +Note: See also ThingsEye documentation. 1440 + 1441 +Click on the Events tab. 1442 + 1443 +- Select Debug from the Event type dropdown. 1444 + 1445 +- Select the time frame from the time window. 1446 + 1447 +[insert image] 1448 + 1449 +- To view the JSON payload of a message, click on the three dots (...) in the Message column of the desired message. 1450 + 1451 +[insert image] 1452 + 1453 + 1454 +Deleting the integration: 1455 + 1456 +If you want to delete this integration, click the Delete integration button. 1457 + 1458 + 1459 +== 3.6 Interface Details == 1460 + 1432 1432 === 3.6.1 Digital Input Port: DI1/DI2 /DI3 ( For LT-33222-L, low active ) === 1433 1433 1434 1434 1435 -Support NPN Type sensor1464 +Support NPN-type sensor 1436 1436 1437 1437 [[image:1653356991268-289.png]] 1438 1438 1439 1439 1469 +=== 3.6.2 Digital Input Ports: DI1/DI2 ( For LT-22222-L) === 1440 1440 1441 -=== 3.6.2 Digital Input Port: DI1/DI2 ( For LT-22222-L) === 1442 1442 1443 - 1444 1444 ((( 1445 -The DI port of LT-22222-L can support NPN orPNP output sensor.1473 +The DI ports of the LT-22222-L can support **NPN**, **PNP**, or **dry contact** output sensors. 1446 1446 ))) 1447 1447 1448 1448 ((( 1449 1449 ((( 1450 - Internal circuitas below,the NEC2501is aphotocoupler,theActive current(from NEC2501 pin 1 to pin 2 is 1maandthemax currentis50mA. Whenthere isactive currentpassNEC2501 pin1 to pin2.The DIwillbe active high.1478 +The part of the internal circuit of the LT-22222-L shown below includes the NEC2501 photocoupler. The active current from NEC2501 pin 1 to pin 2 is 1 mA, with a maximum allowable current of 50 mA. When active current flows from NEC2501 pin 1 to pin 2, the DI becomes active HIGH and the DI LED status changes. 1451 1451 1452 1452 1453 1453 ))) ... ... @@ -1457,7 +1457,7 @@ 1457 1457 1458 1458 ((( 1459 1459 ((( 1460 - When use need1488 +(% style="color:#000000; font-family:Arial,sans-serif; font-size:11pt; font-style:normal; font-variant-alternates:normal; font-variant-east-asian:normal; font-variant-ligatures:normal; font-variant-numeric:normal; font-variant-position:normal; font-weight:400; text-decoration:none; white-space:pre-wrap" %)When connecting a device to the DI port, both DI1+ and DI1- must be connected. 1461 1461 ))) 1462 1462 ))) 1463 1463 ... ... @@ -1466,55 +1466,53 @@ 1466 1466 ))) 1467 1467 1468 1468 ((( 1469 -(% style="color: blue" %)**Example1**(%%): Connect to aLow1497 +(% style="color:#0000ff" %)**Example 1**(%%): Connecting to a low-active sensor. 1470 1470 ))) 1471 1471 1472 1472 ((( 1473 -This type of sensor willoutput a low signalGNDwhen active.1501 +This type of sensor outputs a low (GND) signal when active. 1474 1474 ))) 1475 1475 1476 1476 * ((( 1477 -Connect sensor's output to DI1- 1505 +Connect the sensor's output to DI1- 1478 1478 ))) 1479 1479 * ((( 1480 -Connect sensor's VCC to DI1+. 1508 +Connect the sensor's VCC to DI1+. 1481 1481 ))) 1482 1482 1483 1483 ((( 1484 - So when sensor active, the current between NEC2501 pin1 and pin2 is:1512 +When the sensor is active, the current between NEC2501 pin 1 and pin 2 will be: 1485 1485 ))) 1486 1486 1487 1487 ((( 1488 -[[image:1653968155772-850.png||height="23" width="19"]]**= DI1**+** 1516 +[[image:1653968155772-850.png||height="23" width="19"]]**= DI1**+** / 1K.** 1489 1489 ))) 1490 1490 1491 1491 ((( 1492 - If**v**, the [[image:1653968155772-850.png||height="23" width="19"]]= 12mA ,Sothe LT-22222-L will be able to detect this active signal.1520 +For example, if** DI1+ **= **12V**, the resulting current is [[image:1653968155772-850.png||height="23" width="19"]]= 12mA. Therefore, the LT-22222-L will be able to detect this active signal. 1493 1493 ))) 1494 1494 1495 1495 ((( 1496 1496 1497 - 1498 - 1499 1499 ))) 1500 1500 1501 1501 ((( 1502 -(% style="color: blue" %)**Example2**(%%): Connect to aHigh1528 +(% style="color:#0000ff" %)**Example 2**(%%): Connecting to a high-active sensor. 1503 1503 ))) 1504 1504 1505 1505 ((( 1506 -This type of sensor willoutput a high signal (example24v) when active.1532 +This type of sensor outputs a high signal (e.g., 24V) when active. 1507 1507 ))) 1508 1508 1509 1509 * ((( 1510 -Connect sensor's output to DI1+ 1536 +Connect the sensor's output to DI1+ 1511 1511 ))) 1512 1512 * ((( 1513 -Connect sensor's GND DI1-. 1539 +Connect the sensor's GND DI1-. 1514 1514 ))) 1515 1515 1516 1516 ((( 1517 - So when sensor active, the current between NEC2501 pin1 and pin2 is:1543 +When the sensor is active, the current between NEC2501 pin1 and pin2 will be: 1518 1518 ))) 1519 1519 1520 1520 ((( ... ... @@ -1522,32 +1522,30 @@ 1522 1522 ))) 1523 1523 1524 1524 ((( 1525 -If **DI1+ = 24 v**, the[[image:1653968155772-850.png||height="23" width="19"]] 24mASo the LT-22222-L willbe able todetect this high1551 +If **DI1+ = 24V**, the resulting current[[image:1653968155772-850.png||height="23" width="19"]] is 24mA, Therefore, the LT-22222-L will detect this high-active signal. 1526 1526 ))) 1527 1527 1528 1528 ((( 1529 1529 1530 - 1531 - 1532 1532 ))) 1533 1533 1534 1534 ((( 1535 -(% style="color: blue" %)**Example3**(%%): Connect to a 220vhigh1559 +(% style="color:#0000ff" %)**Example 3**(%%): Connecting to a 220V high-active sensor. 1536 1536 ))) 1537 1537 1538 1538 ((( 1539 -Assume u serwant to monitor an active signal higher than 220v,to make surenotburnthe photocoupler1563 +Assume that you want to monitor an active signal higher than 220V without damaging the photocoupler 1540 1540 ))) 1541 1541 1542 1542 * ((( 1543 -Connect sensor's output to DI1+ with a serial50K resistor1567 +Connect the sensor's output to DI1+ with a 50K resistor in series. 1544 1544 ))) 1545 1545 * ((( 1546 -Connect sensor's GND DI1-. 1570 +Connect the sensor's GND DI1-. 1547 1547 ))) 1548 1548 1549 1549 ((( 1550 - So when sensor active, the current between NEC2501 pin1 and pin2 is:1574 +When the sensor is active, the current between NEC2501 pin1 and pin2 will be: 1551 1551 ))) 1552 1552 1553 1553 ((( ... ... @@ -1555,44 +1555,56 @@ 1555 1555 ))) 1556 1556 1557 1557 ((( 1558 -If sensor output is 220 v, the.= 4.3mA ,Sothe LT-22222-L will be able to detect this highsafely.1582 +If the sensor output is 220V, then [[image:1653968155772-850.png||height="23" width="19"]](% id="cke_bm_243359S" style="display:none" wfd-invisible="true" %)[[image:image-20220524095628-8.png]](%%) = DI1+ / 51K = 4.3mA. Therefore, the LT-22222-L will be able to safely detect this high-active signal. 1559 1559 ))) 1560 1560 1561 1561 1586 +(% style="color:blue" %)**Example4**(%%): Connecting to Dry Contact sensor 1562 1562 1563 - ===3.6.3DigitalOutputPort:DO1/DO2/DO3===1588 +From the DI port circuit above, you can see that activating the photocoupler requires a voltage difference between the DI+ and DI- ports. However, the Dry Contact sensor is a passive component and cannot provide this voltage difference. 1564 1564 1590 +To detect a Dry Contact, you can supply a power source to one pin of the Dry Contact. Below is a reference circuit diagram. 1565 1565 1566 - NPN output: GND or Float. Max voltagecan apply to output pin is36v.1592 +[[image:image-20230616235145-1.png]] 1567 1567 1568 - [[image:1653357531600-905.png]]1594 +(% style="color:blue" %)**Example5**(%%): Connecting to an Open Collector 1569 1569 1596 +[[image:image-20240219115718-1.png]] 1570 1570 1571 1571 1572 -=== 3.6. 4AnalogInputInterface===1599 +=== 3.6.3 Digital Output Ports: DO1/DO2 /DO3 === 1573 1573 1574 1574 1575 - Theanaloginputinterfaceis as below. TheLT willmeasurethe IN2voltagesoto calculatethecurrentpass theLoad.Theformulais:1602 +(% style="color:blue" %)**NPN output**(%%): GND or Float. The maximum voltage that can be applied to the output pin is 36V. 1576 1576 1604 +(% style="color:red" %)**Note: The DO pins will float when the device is powered off.** 1577 1577 1606 +[[image:1653357531600-905.png]] 1607 + 1608 + 1609 +=== 3.6.4 Analog Input Interfaces === 1610 + 1611 + 1612 +The analog input interface is shown below. The LT-22222-L will measure the IN2 voltage to calculate the current passing through the load. The formula is: 1613 + 1614 + 1578 1578 (% style="color:blue" %)**AC2 = (IN2 voltage )/12** 1579 1579 1580 1580 [[image:1653357592296-182.png]] 1581 1581 1582 -Example toconnect a 4~~20mA sensor1619 +Example: Connecting a 4~~20mA sensor 1583 1583 1584 -We take the wind speed sensor as an example for reference only.1621 +We will use the wind speed sensor as an example for reference only. 1585 1585 1586 1586 1587 -**Specifications of the wind speed sensor:** 1624 +(% style="color:blue" %)**Specifications of the wind speed sensor:** 1588 1588 1589 -Red: 12~~24 v1626 +(% style="color:red" %)**Red: 12~~24V** 1590 1590 1591 -Yellow: 4~~20mA 1628 +(% style="color:#ffc000" %)**Yellow: 4~~20mA** 1592 1592 1593 -Black: GND 1630 +**Black: GND** 1594 1594 1595 - 1596 1596 **Connection diagram:** 1597 1597 1598 1598 [[image:1653357640609-758.png]] ... ... @@ -1600,12 +1600,29 @@ 1600 1600 [[image:1653357648330-671.png||height="155" width="733"]] 1601 1601 1602 1602 1639 +Example: Connecting to a regulated power supply to measure voltage 1603 1603 1641 +[[image:image-20230608101532-1.png||height="606" width="447"]] 1642 + 1643 +[[image:image-20230608101608-2.jpeg||height="379" width="284"]] 1644 + 1645 +[[image:image-20230608101722-3.png||height="102" width="1139"]] 1646 + 1647 + 1648 +(% style="color:blue; font-weight:bold" %)**Specifications of the regulated power supply**(% style="color:blue" %)**:** 1649 + 1650 +(% style="color:red" %)**Red: 12~~24v** 1651 + 1652 +**Black: GND** 1653 + 1654 + 1604 1604 === 3.6.5 Relay Output === 1605 1605 1606 1606 1607 1607 ((( 1608 -The LT serial controller has two relay interfaces; each interface uses two pins of the screw terminal. User can connect other device’s Power Line to in serial of RO1_1 and RO_2. Such as below: 1659 +The LT-22222-L has two relay interfaces, RO1 and RO2, each using two pins of the screw terminal (ROx-1 and ROx-2 where x is the port number, 1 or 2). You can connect a device's power line in series with one of the relay interfaces (e.g., RO1-1 and RO1-2 screw terminals). See the example below: 1660 + 1661 +**Note**: The ROx pins will be in the Open (NO) state when the LT-22222-L is powered off. 1609 1609 ))) 1610 1610 1611 1611 [[image:image-20220524100215-9.png]] ... ... @@ -1614,27 +1614,51 @@ 1614 1614 [[image:image-20220524100215-10.png||height="382" width="723"]] 1615 1615 1616 1616 1617 - 1618 1618 == 3.7 LEDs Indicators == 1619 1619 1620 1620 1621 -[[image:image-20220524100748-11.png]] 1673 +(% border="1" cellspacing="3" style="background-color:#f2f2f2; width:510px" %) 1674 +|(% style="background-color:#4f81bd; color:white; width:50px" %)**LEDs**|(% style="background-color:#4f81bd; color:white; width:460px" %)**Feature** 1675 +|**PWR**|Always on if there is power 1676 +|**TX**|((( 1677 +((( 1678 +Device boot: TX blinks 5 times. 1679 +))) 1622 1622 1681 +((( 1682 +Successful join network: TX ON for 5 seconds. 1683 +))) 1623 1623 1685 +((( 1686 +Transmit a LoRa packet: TX blinks once 1687 +))) 1688 +))) 1689 +|**RX**|RX blinks once when receiving a packet. 1690 +|**DO1**|For LT-22222-L: ON when DO1 is low, OFF when DO1 is high 1691 +|**DO2**|For LT-22222-L: ON when DO2 is low, OFF when DO2 is high 1692 +|**DI1**|((( 1693 +For LT-22222-L: ON when DI1 is high, OFF when DI1 is low 1694 +))) 1695 +|**DI2**|((( 1696 +For LT-22222-L: ON when DI2 is high, OFF when DI2 is low 1697 +))) 1698 +|**RO1**|For LT-22222-L: ON when RO1 is closed, OFF when RO1 is open 1699 +|**RO2**|For LT-22222-L: ON when RO2 is closed, OFF when RO2 is open 1624 1624 1625 -= 4. Us eAT Command =1701 += 4. Using AT Command = 1626 1626 1703 +== 4.1 Connecting the LT-22222-L to a computer == 1627 1627 1628 -== 4.1 Access AT Command == 1629 1629 1706 +((( 1707 +The LT-22222-L supports programming using AT Commands. You can use a USB-to-TTL adapter along with a 3.5mm Program Cable to connect the LT-22222-L to a computer, as shown below. 1708 +))) 1630 1630 1631 -LT supports AT Command set. User can use a USB to TTL adapter plus the 3.5mm Program Cable to connect to LT for using AT command, as below. 1632 - 1633 1633 [[image:1653358238933-385.png]] 1634 1634 1635 1635 1636 1636 ((( 1637 - In PC,User needs to set (% style="color:#4f81bd" %)**serial tool**(%%)(such as [[putty>>url:https://www.chiark.greenend.org.uk/~~sgtatham/putty/latest.html]], SecureCRT) baud ratetoforLT. The AT commands are disable by default andneedto enterpassword (default:(% style="color:green" %)**123456**)(%%) to activeit.As shown below:1714 +On the PC, the user needs to set the (% style="color:#4f81bd" %)**serial tool**(%%)(such as [[putty>>url:https://www.chiark.greenend.org.uk/~~sgtatham/putty/latest.html]], SecureCRT) to a baud rate of (% style="color:green" %)**9600**(%%) to access to access serial console of LT-22222-L. The AT commands are disabled by default, and a password (default:(% style="color:green" %)**123456**)(%%) must be entered to active them, as shown below: 1638 1638 ))) 1639 1639 1640 1640 [[image:1653358355238-883.png]] ... ... @@ -1641,10 +1641,12 @@ 1641 1641 1642 1642 1643 1643 ((( 1644 - More detailAT Commandmanual can be found at1721 +You can find more details in the [[AT Command Manual>>url:http://www.dragino.com/downloads/index.php?dir=LT_LoRa_IO_Controller/LT33222-L/]] 1645 1645 ))) 1646 1646 1647 1647 ((( 1725 +The following table lists all the AT commands related to the LT-22222-L, except for those used for switching between modes. 1726 + 1648 1648 AT+<CMD>? : Help on <CMD> 1649 1649 ))) 1650 1650 ... ... @@ -1657,7 +1657,7 @@ 1657 1657 ))) 1658 1658 1659 1659 ((( 1660 -AT+<CMD>=? : Get the value 1739 +AT+<CMD>=? : Get the value 1661 1661 ))) 1662 1662 1663 1663 ((( ... ... @@ -1685,11 +1685,11 @@ 1685 1685 ))) 1686 1686 1687 1687 ((( 1688 -AT+APPSKEY: Get or Set the Application Session Key 1767 +AT+APPSKEY: Get or Set the Application Session Key 1689 1689 ))) 1690 1690 1691 1691 ((( 1692 -AT+APPEUI: Get or Set the Application EUI 1771 +AT+APPEUI: Get or Set the Application EUI 1693 1693 ))) 1694 1694 1695 1695 ((( ... ... @@ -1701,7 +1701,7 @@ 1701 1701 ))) 1702 1702 1703 1703 ((( 1704 -AT+DR: Get or Set the Data Rate. (0-7 corresponding to DR_X) 1783 +AT+DR: Get or Set the Data Rate. (0-7 corresponding to DR_X) 1705 1705 ))) 1706 1706 1707 1707 ((( ... ... @@ -1737,7 +1737,7 @@ 1737 1737 ))) 1738 1738 1739 1739 ((( 1740 -AT+NJM: Get or Set the Network Join Mode. (0: ABP, 1: OTAA) 1819 +AT+NJM: Get or Set the Network Join Mode. (0: ABP, 1: OTAA) 1741 1741 ))) 1742 1742 1743 1743 ((( ... ... @@ -1781,7 +1781,7 @@ 1781 1781 ))) 1782 1782 1783 1783 ((( 1784 -AT+VER: Get current image version and Frequency Band 1863 +AT+VER: Get current image version and Frequency Band 1785 1785 ))) 1786 1786 1787 1787 ((( ... ... @@ -1789,7 +1789,7 @@ 1789 1789 ))) 1790 1790 1791 1791 ((( 1792 -AT+CFS: Get confirmation status of the last AT+SEND (0-1) 1871 +AT+CFS: Get confirmation status of the last AT+SEND (0-1) 1793 1793 ))) 1794 1794 1795 1795 ((( ... ... @@ -1829,107 +1829,108 @@ 1829 1829 ))) 1830 1830 1831 1831 1832 - 1833 1833 == 4.2 Common AT Command Sequence == 1834 1834 1835 - 1836 1836 === 4.2.1 Multi-channel ABP mode (Use with SX1301/LG308) === 1837 1837 1838 1838 ((( 1839 1839 1840 1840 1841 -**If device has not joined network yet:** 1918 +((( 1919 +(% style="color:blue" %)**If device has not joined network yet:** 1842 1842 ))) 1921 +))) 1843 1843 1844 1844 ((( 1845 -(% style="background-color:#dcdcdc" %)123456 1924 +(% style="background-color:#dcdcdc" %)**123456** 1846 1846 ))) 1847 1847 1848 1848 ((( 1849 -(% style="background-color:#dcdcdc" %)AT+FDR 1928 +(% style="background-color:#dcdcdc" %)**AT+FDR** 1850 1850 ))) 1851 1851 1852 1852 ((( 1853 -(% style="background-color:#dcdcdc" %)123456 1932 +(% style="background-color:#dcdcdc" %)**123456** 1854 1854 ))) 1855 1855 1856 1856 ((( 1857 -(% style="background-color:#dcdcdc" %)AT+NJM=0 1936 +(% style="background-color:#dcdcdc" %)**AT+NJM=0** 1858 1858 ))) 1859 1859 1860 1860 ((( 1861 -(% style="background-color:#dcdcdc" %)ATZ 1940 +(% style="background-color:#dcdcdc" %)**ATZ** 1862 1862 ))) 1863 1863 1864 1864 1865 1865 ((( 1866 -**If device already joined network:** 1945 +(% style="color:blue" %)**If device already joined network:** 1867 1867 ))) 1868 1868 1869 1869 ((( 1870 -(% style="background-color:#dcdcdc" %)AT+NJM=0 1949 +(% style="background-color:#dcdcdc" %)**AT+NJM=0** 1871 1871 ))) 1872 1872 1873 1873 ((( 1874 -(% style="background-color:#dcdcdc" %)ATZ 1953 +(% style="background-color:#dcdcdc" %)**ATZ** 1875 1875 ))) 1876 1876 1877 1877 1878 - 1879 1879 === 4.2.2 Single-channel ABP mode (Use with LG01/LG02) === 1880 1880 1881 1881 ((( 1882 1882 1883 1883 1884 -(% style="background-color:#dcdcdc" %)123456(%%) Enter Password to have AT access. 1962 +((( 1963 +(% style="background-color:#dcdcdc" %)**123456**(%%) ~/~/ Enter Password to have AT access. 1885 1885 ))) 1965 +))) 1886 1886 1887 1887 ((( 1888 -(% style="background-color:#dcdcdc" %) AT+FDR(%%) 1968 +(% style="background-color:#dcdcdc" %)** AT+FDR**(%%) ~/~/ Reset Parameters to Factory Default, Keys Reserve 1889 1889 ))) 1890 1890 1891 1891 ((( 1892 -(% style="background-color:#dcdcdc" %) 123456(%%) Enter Password to have AT access. 1972 +(% style="background-color:#dcdcdc" %)** 123456**(%%) ~/~/ Enter Password to have AT access. 1893 1893 ))) 1894 1894 1895 1895 ((( 1896 -(% style="background-color:#dcdcdc" %) AT+CLASS=C(%%) Set to work in CLASS C 1976 +(% style="background-color:#dcdcdc" %)** AT+CLASS=C**(%%) ~/~/ Set to work in CLASS C 1897 1897 ))) 1898 1898 1899 1899 ((( 1900 -(% style="background-color:#dcdcdc" %) AT+NJM=0(%%) Set to ABP mode 1980 +(% style="background-color:#dcdcdc" %)** AT+NJM=0**(%%) ~/~/ Set to ABP mode 1901 1901 ))) 1902 1902 1903 1903 ((( 1904 -(% style="background-color:#dcdcdc" %) AT+ADR=0(%%) Set the Adaptive Data Rate Off 1984 +(% style="background-color:#dcdcdc" %) **AT+ADR=0**(%%) ~/~/ Set the Adaptive Data Rate Off 1905 1905 ))) 1906 1906 1907 1907 ((( 1908 -(% style="background-color:#dcdcdc" %) AT+DR=5(%%) Set Data Rate 1988 +(% style="background-color:#dcdcdc" %)** AT+DR=5**(%%) ~/~/ Set Data Rate 1909 1909 ))) 1910 1910 1911 1911 ((( 1912 -(% style="background-color:#dcdcdc" %) AT+TDC=60000(%%) Set transmit interval to 60 seconds 1992 +(% style="background-color:#dcdcdc" %)** AT+TDC=60000**(%%) ~/~/ Set transmit interval to 60 seconds 1913 1913 ))) 1914 1914 1915 1915 ((( 1916 -(% style="background-color:#dcdcdc" %) AT+CHS=868400000(%%) Set transmit frequency to 868.4Mhz 1996 +(% style="background-color:#dcdcdc" %)** AT+CHS=868400000**(%%) ~/~/ Set transmit frequency to 868.4Mhz 1917 1917 ))) 1918 1918 1919 1919 ((( 1920 -(% style="background-color:#dcdcdc" %) AT+RX2FQ=868400000(%%) Set RX2Frequency to 868.4Mhz (according to the result from server) 2000 +(% style="background-color:#dcdcdc" %)** AT+RX2FQ=868400000**(%%) ~/~/ Set RX2Frequency to 868.4Mhz (according to the result from server) 1921 1921 ))) 1922 1922 1923 1923 ((( 1924 -(% style="background-color:#dcdcdc" %) AT+RX2DR=5(%%) 2004 +(% style="background-color:#dcdcdc" %)** AT+RX2DR=5**(%%)** ** ~/~/ Set RX2DR to match the downlink DR from server. see below 1925 1925 ))) 1926 1926 1927 1927 ((( 1928 -(% style="background-color:#dcdcdc" %) AT+DADDR=26 01 1A F1 (%%) Set Device Address to 26 01 1A F1, this ID can be found in the LoRa Server portal. 2008 +(% style="background-color:#dcdcdc" %)** AT+DADDR=26 01 1A F1** (%%) ~/~/ Set Device Address to 26 01 1A F1, this ID can be found in the LoRa Server portal. 1929 1929 ))) 1930 1930 1931 1931 ((( 1932 -(% style="background-color:#dcdcdc" %) ATZ (%%) Reset MCU 2012 +(% style="background-color:#dcdcdc" %)** ATZ** (%%) ~/~/ Reset MCU 1933 1933 1934 1934 1935 1935 ))) ... ... @@ -1939,12 +1939,14 @@ 1939 1939 ))) 1940 1940 1941 1941 ((( 1942 -(% style="color:red" %)1. Make sure the device is set to ABP mode in the IoT Server. 1943 -2. Make sure the LG01/02 gateway RX frequency is exactly the same as AT+CHS setting. 1944 -3. Make sure SF / bandwidth setting in LG01/LG02 match the settings of AT+DR. refer [[this link>>url:http://www.dragino.com/downloads/index.php?dir=LoRa_Gateway/&file=LoRaWAN%201.0.3%20Regional%20Parameters.xlsx]] to see what DR means. 1945 -4. The command AT+RX2FQ and AT+RX2DR is to let downlink work. to set the correct parameters, user can check the actually downlink parameters to be used. As below. Which shows the RX2FQ should use 868400000 and RX2DR should be 5 2022 +**~1. Make sure the device is set to ABP mode in the IoT Server.** 1946 1946 1947 - 2024 +**2. Make sure the LG01/02 gateway RX frequency is exactly the same as AT+CHS setting.** 2025 + 2026 +**3. Make sure SF / bandwidth setting in LG01/LG02 match the settings of AT+DR. refer [[this link>>url:http://www.dragino.com/downloads/index.php? 2027 +dir=LoRa_Gateway/&file=LoRaWAN%201.0.3%20Regional%20Parameters.xlsx]] to see what DR means.** 2028 + 2029 +**4. The command AT+RX2FQ and AT+RX2DR is to let downlink work. to set the correct parameters, user can check the actually downlink parameters to be used. As below. Which shows the RX2FQ should use 868400000 and RX2DR should be 5.** 1948 1948 ))) 1949 1949 1950 1950 ((( ... ... @@ -1951,45 +1951,53 @@ 1951 1951 [[image:1653359097980-169.png||height="188" width="729"]] 1952 1952 ))) 1953 1953 2036 + 2037 +=== 4.2.3 Change to Class A === 2038 + 2039 + 1954 1954 ((( 1955 - 1956 -))) 2041 +(% style="color:blue" %)**If sensor JOINED:** 1957 1957 2043 +(% style="background-color:#dcdcdc" %)**AT+CLASS=A** 1958 1958 1959 -=== 4.2.3 Change to Class A === 2045 +(% style="background-color:#dcdcdc" %)**ATZ** 2046 +))) 1960 1960 1961 1961 1962 -If sensor JOINED 1963 -(% style="background-color:#dcdcdc" %)AT+CLASS=A 1964 -ATZ 2049 += 5. Case Study = 1965 1965 2051 +== 5.1 Counting how many objects pass through the flow Line == 1966 1966 1967 1967 1968 - =5.FAQ=2054 +Reference Link: [[How to set up to setup counting for objects passing through the flow line>>How to set up to count objects pass in flow line]]? 1969 1969 1970 1970 1971 -= =5.1Howto upgrade the image?==2057 += 6. FAQ = 1972 1972 2059 +== 6.1 How to upgrade the image? == 1973 1973 1974 -The LT LoRaWAN Controller is shipped with a 3.5mm cable, the cable is used to upload image to LT to: 1975 1975 1976 -* Support new features 1977 -* For bug fix 2062 +The LT-22222-L I/O Controller is shipped with a 3.5mm cable, which is used to upload an image to LT in order to: 2063 + 2064 +* Support new features. 2065 +* Fix bugs. 1978 1978 * Change LoRaWAN bands. 1979 1979 1980 -Below s howsthe hardware connection forhow toupload an image to the LT:2068 +Below is the hardware connection setup for uploading an image to the LT: 1981 1981 1982 1982 [[image:1653359603330-121.png]] 1983 1983 1984 1984 1985 1985 ((( 1986 -(% style="color: blue" %)**Step1**(%%)**:** Download [[flashloader>>url:https://www.st.com/content/st_com/en/products/development-tools/software-development-tools/stm32-software-development-tools/stm32-programmers/flasher-stm32.html]].1987 -(% style="color: blue" %)**Step2**(%%)**:** Download the [[LT Image files>>url:https://www.dropbox.com/sh/g99v0fxcltn9r1y/AADKXQ2v5ZT-S3sxdmbvE7UAa/LT-22222-L/image?dl=0&subfolder_nav_tracking=1]].1988 -(% style="color: blue" %)**Step3**(%%)**:** Openflashloader;choose the correct COM port to update.2074 +(% style="color:#0000ff" %)**Step 1**(%%)**:** Download the F[[lash Loader>>url:https://www.st.com/content/st_com/en/products/development-tools/software-development-tools/stm32-software-development-tools/stm32-programmers/flasher-stm32.html]]. 2075 +(% style="color:#0000ff" %)**Step 2**(%%)**:** Download the [[LT Image files>>https://www.dropbox.com/sh/g99v0fxcltn9r1y/AACrbrDN0AqLHbBat0ViWx5Da/LT-22222-L/Firmware?dl=0&subfolder_nav_tracking=1]]. 2076 +(% style="color:#0000ff" %)**Step 3**(%%)**:** Open the Flash Loader and choose the correct COM port to update. 1989 1989 1990 1990 2079 +((( 1991 1991 (% style="color:blue" %)**For LT-22222-L**(%%): 1992 -Hold down the PRO button and then momentarily press the RST reset button and the (% style="color:red" %)**DO1 led**(%%) will change from OFF to ON. When (% style="color:red" %)**DO1 LED**(%%) is on, it means the device is in download mode. 2081 +Hold down the PRO button, then momentarily press the RST reset button. The (% style="color:red" %)**DO1 LED**(%%) will change from OFF to ON. When the (% style="color:red" %)**DO1 LED**(%%) is ON, it indicates that the device is in download mode. 2082 +))) 1993 1993 1994 1994 1995 1995 ))) ... ... @@ -1996,57 +1996,54 @@ 1996 1996 1997 1997 [[image:image-20220524103407-12.png]] 1998 1998 2089 + 1999 1999 [[image:image-20220524103429-13.png]] 2000 2000 2092 + 2001 2001 [[image:image-20220524104033-15.png]] 2002 2002 2003 2003 2004 -(% style="color:red" %)**Not ice**(%%): Incaseuserhaslost the program cable.Usercanhandmade one from a 3.5mm cable. The pin mapping is:2096 +(% style="color:red" %)**Note**(%%): If you have lost the programming cable, you can make one from a 3.5mm cable. The pin mapping is as follows: 2005 2005 2006 - 2007 2007 [[image:1653360054704-518.png||height="186" width="745"]] 2008 2008 2009 2009 2010 2010 ((( 2011 2011 ((( 2012 - 2103 +== 6.2 How to change the LoRa Frequency Bands/Region? == 2013 2013 2014 -== 5.2 How to change the LoRa Frequency Bands/Region? == 2015 - 2016 2016 2017 2017 ))) 2018 2018 ))) 2019 2019 2020 2020 ((( 2021 - Usercan follow the introductionfor[[how to upgrade image>>||anchor="H5.1Howtoupgradetheimage3F"]]. When downloadtheimages,choose the required image filefor download.2110 +You can follow the introductions on [[how to upgrade image>>||anchor="H5.1Howtoupgradetheimage3F"]]. When downloading, select the required image file. 2022 2022 ))) 2023 2023 2024 2024 ((( 2025 2025 2026 2026 2116 +== 6.3 How to set up LT to work with a Single Channel Gateway, such as LG01/LG02? == 2027 2027 2028 -== 5.3 How to set up LT to work with Single Channel Gateway such as LG01/LG02? == 2029 - 2030 2030 2031 2031 ))) 2032 2032 2033 2033 ((( 2034 2034 ((( 2035 -In this case, u sersneed to set LT-33222-L to work in ABP mode&transmitin only one frequency.2123 +In this case, you need to set the LT-33222-L to work in ABP mode and transmit on only one frequency. 2036 2036 ))) 2037 2037 ))) 2038 2038 2039 2039 ((( 2040 2040 ((( 2041 -Assume wehave a LG02 workingin the frequency 868400000now , belowisthe step.2129 +Assume you have an LG02 working on the frequency 868400000. Below are the steps. 2042 2042 2043 - 2044 2044 2045 2045 ))) 2046 2046 ))) 2047 2047 2048 2048 ((( 2049 -(% style="color: blue" %)**Step1**(%%): Log in TTN,Create an ABP device in the application and input thenetworksession key (NETSKEY),app session key (APPSKEY)fromthe device.2136 +(% style="color:#0000ff" %)**Step 1**(%%): Log in to The Things Stack SANDBOX, create an ABP device in the application, and input the Network Session key (NwkSKey), App session key (AppSKey) of the device. 2050 2050 2051 2051 2052 2052 ))) ... ... @@ -2070,16 +2070,23 @@ 2070 2070 ))) 2071 2071 2072 2072 ((( 2073 -(% style="background-color:#dcdcdc" %)123456 (%%) Enter Password to have AT access. 2074 -(% style="background-color:#dcdcdc" %)AT+FDR(%%) Reset Parameters to Factory Default, Keys Reserve 2075 -(% style="background-color:#dcdcdc" %)123456 (%%) Enter Password to have AT access. 2076 -(% style="background-color:#dcdcdc" %)AT+NJM=0 (%%) Set to ABP mode 2077 -(% style="background-color:#dcdcdc" %)AT+ADR=0 (%%) Set the Adaptive Data Rate Off 2078 -(% style="background-color:#dcdcdc" %)AT+DR=5 (%%) Set Data Rate (Set AT+DR=3 for 915 band) 2079 -(% style="background-color:#dcdcdc" %)AT+TDC=60000 (%%) Set transmit interval to 60 seconds 2080 -(% style="background-color:#dcdcdc" %)AT+CHS=868400000(%%) Set transmit frequency to 868.4Mhz 2081 -(% style="background-color:#dcdcdc" %)AT+DADDR=26 01 1A F1(%%) Set Device Address to 26 01 1A F1 2082 -(% style="background-color:#dcdcdc" %)ATZ (%%) Reset MCU 2160 +(% style="background-color:#dcdcdc" %)**123456** (%%) : Enter Password to have AT access. 2161 + 2162 +(% style="background-color:#dcdcdc" %)**AT+FDR**(%%) : Reset Parameters to Factory Default, Keys Reserve 2163 + 2164 +(% style="background-color:#dcdcdc" %)**AT+NJM=0** (%%) : Set to ABP mode 2165 + 2166 +(% style="background-color:#dcdcdc" %)**AT+ADR=0** (%%) : Set the Adaptive Data Rate Off 2167 + 2168 +(% style="background-color:#dcdcdc" %)**AT+DR=5** (%%) : Set Data Rate (Set AT+DR=3 for 915 band) 2169 + 2170 +(% style="background-color:#dcdcdc" %)**AT+TDC=60000 **(%%) : Set transmit interval to 60 seconds 2171 + 2172 +(% style="background-color:#dcdcdc" %)**AT+CHS=868400000**(%%) : Set transmit frequency to 868.4Mhz 2173 + 2174 +(% style="background-color:#dcdcdc" %)**AT+DADDR=26 01 1A F1**(%%) : Set Device Address to 26 01 1A F1 2175 + 2176 +(% style="background-color:#dcdcdc" %)**ATZ** (%%) : Reset MCU 2083 2083 ))) 2084 2084 2085 2085 ... ... @@ -2090,26 +2090,29 @@ 2090 2090 [[image:1653360498588-932.png||height="485" width="726"]] 2091 2091 2092 2092 2187 +== 6.4 How to change the uplink interval? == 2093 2093 2094 -== 5.4 Can I see counting event in Serial? == 2095 2095 2190 +Please see this link: [[http:~~/~~/wiki.dragino.com/xwiki/bin/view/Main/How%20to%20set%20the%20transmit%20time%20interval/>>url:http://wiki.dragino.com/xwiki/bin/view/Main/How%20to%20set%20the%20transmit%20time%20interval/]] 2096 2096 2097 -((( 2098 -User can run AT+DEBUG command to see the counting event in serial. If firmware too old and doesn't support AT+DEBUG. User can update to latest firmware first. 2099 2099 2193 +== 6.5 Can I see the counting event in Serial? == 2100 2100 2101 2101 2102 -== 5.5 Can i use point to point communication for LT-22222-L? == 2196 +((( 2197 +User can run AT+DEBUG command to see the counting event in serial. If firmware too old and doesn't support AT+DEBUG. User can update to latest firmware first. 2103 2103 2104 2104 2105 - Yes,pleaserefer [[PointPointCommunication>>doc:Main.Pointto Point Communication ofLT-22222-L.WebHome]]2200 +== 6.6 Can I use point-to-point communication with LT-22222-L? == 2106 2106 2107 2107 2203 +Yes, please refer [[Point to Point Communication>>doc:Main. Point to Point Communication of LT-22222-L.WebHome]]. this is [[firmware>>https://github.com/dragino/LT-22222-L/releases]]. 2204 + 2108 2108 2109 2109 ))) 2110 2110 2111 2111 ((( 2112 -== 5.62209 +== 6.7 Why does the relay output become the default and open relay after the lt22222 is powered off? == 2113 2113 2114 2114 2115 2115 If the device is not shut down, but directly powered off. ... ... @@ -2121,15 +2121,33 @@ 2121 2121 After restart, the status before power failure will be read from flash. 2122 2122 2123 2123 2221 +== 6.8 Can i set up LT-22222-L as a NC(Normal Close) Relay? == 2124 2124 2125 -= 6. Trouble Shooting = 2126 2126 2127 - 2224 +LT-22222-L built-in relay is NO (Normal Open). User can use an external relay to achieve Normal Close purpose. Diagram as below: 2225 + 2226 + 2227 +[[image:image-20221006170630-1.png||height="610" width="945"]] 2228 + 2229 + 2230 +== 6.9 Can LT22222-L save RO state? == 2231 + 2232 + 2233 +Firmware version needs to be no less than 1.6.0. 2234 + 2235 + 2236 +== 6.10 Why does the LT22222 always report 15.585V when measuring AVI? == 2237 + 2238 + 2239 +It is likely that the GND is not connected during the measurement, or the wire connected to the GND is loose. 2240 + 2241 + 2242 += 7. Trouble Shooting = 2128 2128 ))) 2129 2129 2130 2130 ((( 2131 2131 ((( 2132 -== 6.1 Downlink doesn't work, how to solve it? ==2247 +== 7.1 Downlink doesn't work, how to solve it? == 2133 2133 2134 2134 2135 2135 ))) ... ... @@ -2142,9 +2142,8 @@ 2142 2142 ((( 2143 2143 2144 2144 2260 +== 7.2 Have trouble to upload image. == 2145 2145 2146 -== 6.2 Have trouble to upload image. == 2147 - 2148 2148 2149 2149 ))) 2150 2150 ... ... @@ -2155,9 +2155,8 @@ 2155 2155 ((( 2156 2156 2157 2157 2272 +== 7.3 Why I can't join TTN in US915 /AU915 bands? == 2158 2158 2159 -== 6.3 Why I can't join TTN in US915 /AU915 bands? == 2160 - 2161 2161 2162 2162 ))) 2163 2163 ... ... @@ -2166,10 +2166,16 @@ 2166 2166 ))) 2167 2167 2168 2168 2282 +== 7.4 Why can LT22222 perform Uplink normally, but cannot receive Downlink? == 2169 2169 2170 -= 7. Order Info = 2171 2171 2285 +The FCD count of the gateway is inconsistent with the FCD count of the node, causing the downlink to remain in the queue state. 2286 +Use this command to bring their counts back together: [[Resets the downlink packet count>>||anchor="H3.4.2.23Resetsthedownlinkpacketcount"]] 2172 2172 2288 + 2289 += 8. Order Info = 2290 + 2291 + 2173 2173 (% style="color:#4f81bd" %)**LT-22222-L-XXX:** 2174 2174 2175 2175 (% style="color:#4f81bd" %)**XXX:** ... ... @@ -2184,12 +2184,9 @@ 2184 2184 * (% style="color:red" %)**IN865**(%%): LT with frequency bands IN865 2185 2185 * (% style="color:red" %)**CN779**(%%): LT with frequency bands CN779 2186 2186 2306 += 9. Packing Info = 2187 2187 2188 2188 2189 - 2190 -= 8. Packing Info = 2191 - 2192 - 2193 2193 **Package Includes**: 2194 2194 2195 2195 * LT-22222-L I/O Controller x 1 ... ... @@ -2204,28 +2204,22 @@ 2204 2204 * Package Size / pcs : 14.5 x 8 x 5 cm 2205 2205 * Weight / pcs : 170g 2206 2206 2323 += 10. Support = 2207 2207 2208 2208 2209 - 2210 -= 9. Support = 2211 - 2212 - 2213 2213 * ((( 2214 2214 Support is provided Monday to Friday, from 09:00 to 18:00 GMT+8. Due to different timezones we cannot offer live support. However, your questions will be answered as soon as possible in the before-mentioned schedule. 2215 2215 ))) 2216 2216 * ((( 2217 -Provide as much information as possible regarding your enquiry (product models, accurately describe your problem and steps to replicate it etc) and send a mail to support@dragino.com>>url:file:///D:/市场资料/说明书/LoRa/LT系列/support@dragino.com]]2330 +Provide as much information as possible regarding your enquiry (product models, accurately describe your problem and steps to replicate it etc) and send a mail to [[Support@dragino.cc>>mailto:Support@dragino.cc]] 2218 2218 2219 2219 2220 - 2221 2221 2222 2222 ))) 2223 2223 2224 -= 1 0. Reference =2336 += 11. Reference = 2225 2225 2226 2226 2227 2227 * LT-22222-L: [[http:~~/~~/www.dragino.com/products/lora-lorawan-end-node/item/156-lt-22222-l.html>>url:http://www.dragino.com/products/lora-lorawan-end-node/item/156-lt-22222-l.html]] 2228 2228 * [[Datasheet, Document Base>>https://www.dropbox.com/sh/gxxmgks42tqfr3a/AACEdsj_mqzeoTOXARRlwYZ2a?dl=0]] 2229 2229 * [[Hardware Source>>url:https://github.com/dragino/Lora/tree/master/LT/LT-33222-L/v1.0]] 2230 - 2231 -
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