Changes for page NDDS75 -- NB-IoT Distance Detect Sensor User Manual
Last modified by Bei Jinggeng on 2024/05/31 09:53
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... ... @@ -1,1 +1,1 @@ 1 -N DDS75NB-IoTDistanceDetectSensor User Manual1 +NSE01 - NB-IoT Soil Moisture & EC Sensor User Manual - Content
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... ... @@ -1,79 +1,66 @@ 1 1 (% style="text-align:center" %) 2 -[[image:image-20220 709085040-1.png||height="542" width="524"]]2 +[[image:image-20220606151504-2.jpeg||height="554" width="554"]] 3 3 4 4 5 5 6 6 7 7 8 -**Table of Contents:** 9 9 10 -{{toc/}} 11 11 12 12 13 13 14 14 15 15 14 +**Table of Contents:** 16 16 17 -= 1. Introduction = 18 18 19 19 20 -== 1.1 What is NDDS75 Distance Detection Sensor == 21 21 22 -((( 23 - 24 24 25 -((( 26 -((( 27 -The Dragino NDDS75 is a (% style="color:blue" %)**NB-IoT Distance Detection Sensor**(%%) for Internet of Things solution. It is designed to measure the distance between the sensor and a flat object. The distance detection sensor is a module that uses ultrasonic sensing technology for distance measurement, and temperature compensation is performed internally to improve the reliability of data. 28 -))) 29 29 30 -((( 31 -The NDDS75 can be applied to scenarios such as horizontal distance measurement, liquid level measurement, parking management system, object proximity and presence detection, intelligent trash can management system, robot obstacle avoidance, automatic control, sewer, bottom water level monitoring, etc. It detects the distance between the measured object and the sensor, and uploads the value via wireless to IoT Server via NB-IoT Network. 32 -))) 21 += 1. Introduction = 33 33 34 -((( 35 -NarrowBand-Internet of Things (NB-IoT) is a standards-based low power wide area (LPWA) technology developed to enable a wide range of new IoT devices and services. NB-IoT significantly improves the power consumption of user devices, system capacity and spectrum efficiency, especially in deep coverage. 36 -))) 23 +== 1.1 What is LoRaWAN Soil Moisture & EC Sensor == 37 37 38 38 ((( 39 -NDDS75 supports different uplink methods include (% style="color:blue" %)**TCP, MQTT, UDP and CoAP** (%%)for different application requirement. 40 -))) 26 + 41 41 42 -((( 43 -NDDS75 is powered by (% style="color:blue" %)**8500mAh Li-SOCI2 battery**(%%), It is designed for long term use up to 5 years. (Actually Battery life depends on the use environment, update period & uplink method) 44 -))) 28 +Dragino NSE01 is an (% style="color:blue" %)**NB-IOT soil moisture & EC sensor**(%%) for agricultural IoT. Used to measure the soil moisture of saline-alkali soil and loam. The soil sensor uses the FDR method to calculate soil moisture and compensates it with soil temperature and electrical conductivity. It has also been calibrated for mineral soil types at the factory. 45 45 46 -((( 47 -To use NDDS75, user needs to check if there is NB-IoT coverage in local area and with the bands NDDS75 supports. If the local operate support it, user needs to get a NB-IoT SIM card from local operator and install NDDS75 to get NB-IoT network connection. 48 -))) 49 -))) 30 +It can detect (% style="color:blue" %)**Soil Moisture, Soil Temperature and Soil Conductivity**(%%), and upload its value to the server wirelessly. 50 50 32 +The wireless technology used in NSE01 allows the device to send data at a low data rate and reach ultra-long distances, providing ultra-long-distance spread spectrum Communication. 33 + 34 +NSE01 are powered by (% style="color:blue" %)**8500mAh Li-SOCI2**(%%) batteries, which can be used for up to 5 years. 35 + 51 51 52 52 ))) 53 53 54 -[[image:165 7327959271-447.png]]39 +[[image:1654503236291-817.png]] 55 55 56 56 42 +[[image:1657245163077-232.png]] 57 57 58 -== 1.2 Features == 59 59 60 60 46 +== 1.2 Features == 47 + 48 + 61 61 * NB-IoT Bands: B1/B3/B8/B5/B20/B28 @H-FDD 62 -* Ultra low power consumption 63 -* Distance Detection by Ultrasonic technology 64 -* Flat object range 280mm - 7500mm 65 -* Accuracy: ±(1cm+S*0.3%) (S: Distance) 66 -* Cable Length: 25cm 50 +* Monitor Soil Moisture 51 +* Monitor Soil Temperature 52 +* Monitor Soil Conductivity 67 67 * AT Commands to change parameters 68 68 * Uplink on periodically 69 69 * Downlink to change configure 70 70 * IP66 Waterproof Enclosure 57 +* Ultra-Low Power consumption 58 +* AT Commands to change parameters 71 71 * Micro SIM card slot for NB-IoT SIM 72 72 * 8500mAh Battery for long term use 73 73 74 74 75 75 76 - 77 77 == 1.3 Specification == 78 78 79 79 ... ... @@ -93,641 +93,726 @@ 93 93 * - B28 @H-FDD: 700MHz 94 94 95 95 96 -(% style="color:#037691" %)** Battery:**83 +(% style="color:#037691" %)**Probe Specification:** 97 97 98 -* Li/SOCI2 un-chargeable battery 99 -* Capacity: 8500mAh 100 -* Self Discharge: <1% / Year @ 25°C 101 -* Max continuously current: 130mA 102 -* Max boost current: 2A, 1 second 85 +Measure Volume: Base on the centra pin of the probe, a cylinder with 7cm diameter and 10cm height. 103 103 87 +[[image:image-20220708101224-1.png]] 104 104 105 -(% style="color:#037691" %)**Power Consumption** 106 106 107 -* STOP Mode: 10uA @ 3.3v 108 -* Max transmit power: 350mA@3.3v 109 109 110 - 111 - 112 - 113 113 == 1.4 Applications == 114 114 115 - 116 -* Smart Buildings & Home Automation 117 -* Logistics and Supply Chain Management 118 -* Smart Metering 119 119 * Smart Agriculture 120 -* Smart Cities 121 -* Smart Factory 122 122 123 123 (% class="wikigeneratedid" id="H200B1.5FirmwareChangelog" %) 124 124 125 125 126 - 127 - 128 - 129 129 == 1.5 Pin Definitions == 130 130 131 131 132 -[[image:1657 328609906-564.png]]101 +[[image:1657246476176-652.png]] 133 133 134 134 135 135 136 -= 2. Use N DDS75to communicate with IoT Server =105 += 2. Use NSE01 to communicate with IoT Server = 137 137 138 - 139 139 == 2.1 How it works == 140 140 141 141 142 142 ((( 143 -The N DDS75is equipped with a NB-IoT module, the pre-loaded firmware in NDDS75will get environment data from sensors and send the value to local NB-IoT network via the NB-IoT module. The NB-IoT network will forward this value to IoT server via the protocol defined by NDDS75.111 +The NSE01 is equipped with a NB-IoT module, the pre-loaded firmware in NSE01 will get environment data from sensors and send the value to local NB-IoT network via the NB-IoT module. The NB-IoT network will forward this value to IoT server via the protocol defined by NSE01. 144 144 ))) 145 145 146 146 147 147 ((( 148 -The diagram below shows the working flow in default firmware of N DDS75:116 +The diagram below shows the working flow in default firmware of NSE01: 149 149 ))) 150 150 119 +[[image:image-20220708101605-2.png]] 120 + 151 151 ((( 152 152 153 153 ))) 154 154 155 -[[image:1657328659945-416.png]] 156 156 157 -((( 158 - 159 -))) 160 160 127 +== 2.2 Quick guide to connect to LoRaWAN server (OTAA) == 161 161 162 - ==2.2Configure the NDDS75==129 +Following is an example for how to join the [[TTN v3 LoRaWAN Network>>url:https://console.cloud.thethings.network/]]. Below is the network structure; we use the [[LG308>>url:http://www.dragino.com/products/lora/item/140-lg308.html]] as a LoRaWAN gateway in this example. 163 163 164 164 165 - === 2.2.1 Test Requirement ===132 +[[image:1654503992078-669.png]] 166 166 167 167 168 -((( 169 -To use NDDS75 in your city, make sure meet below requirements: 170 -))) 135 +The LG308 is already set to connected to [[TTN network >>url:https://console.cloud.thethings.network/]], so what we need to now is configure the TTN server. 171 171 172 -* Your local operator has already distributed a NB-IoT Network there. 173 -* The local NB-IoT network used the band that NDDS75 supports. 174 -* Your operator is able to distribute the data received in their NB-IoT network to your IoT server. 175 175 176 -((( 177 -Below figure shows our testing structure. Here we have NB-IoT network coverage by China Mobile, the band they use is B8. The NDDS75 will use CoAP((% style="color:red" %)120.24.4.116:5683)(%%) or raw UDP((% style="color:red" %)120.24.4.116:5601)(%%) or MQTT((% style="color:red" %)120.24.4.116:1883)(%%)or TCP((% style="color:red" %)120.24.4.116:5600)(%%)protocol to send data to the test server. 178 -))) 138 +(% style="color:blue" %)**Step 1**(%%): Create a device in TTN with the OTAA keys from LSE01. 179 179 140 +Each LSE01 is shipped with a sticker with the default device EUI as below: 180 180 181 -[[image:16 57328756309-230.png]]142 +[[image:image-20220606163732-6.jpeg]] 182 182 144 +You can enter this key in the LoRaWAN Server portal. Below is TTN screen shot: 183 183 146 +**Add APP EUI in the application** 184 184 185 -=== 2.2.2 Insert SIM card === 186 186 149 +[[image:1654504596150-405.png]] 187 187 188 -((( 189 -Insert the NB-IoT Card get from your provider. 190 -))) 191 191 192 -((( 193 -User need to take out the NB-IoT module and insert the SIM card like below: 194 -))) 195 195 153 +**Add APP KEY and DEV EUI** 196 196 197 -[[image:165 7328884227-504.png]]155 +[[image:1654504683289-357.png]] 198 198 199 199 200 200 201 - ===2.2.3 ConnectUSB – TTLtoNDDS75toconfigureit ===159 +(% style="color:blue" %)**Step 2**(%%): Power on LSE01 202 202 203 203 204 -((( 205 -((( 206 -User need to configure NDDS75 via serial port to set the (% style="color:blue" %)**Server Address** / **Uplink Topic** (%%)to define where and how-to uplink packets. NDDS75 support AT Commands, user can use a USB to TTL adapter to connect to NDDS75 and use AT Commands to configure it, as below. 207 -))) 208 -))) 162 +Put a Jumper on JP2 to power on the device. ( The Jumper must be in FLASH position). 209 209 210 -[[image:image-20220 709092052-2.png]]164 +[[image:image-20220606163915-7.png]] 211 211 212 212 213 -** Connection:**167 +(% style="color:blue" %)**Step 3**(%%)**:** The LSE01 will auto join to the TTN network. After join success, it will start to upload messages to TTN and you can see the messages in the panel. 214 214 215 - (% style="background-color:yellow" %)USB TTL GND <~-~-~-~-> GND169 +[[image:1654504778294-788.png]] 216 216 217 - (% style="background-color:yellow" %)USB TTL TXD <~-~-~-~-> UART_RXD 218 218 219 - (% style="background-color:yellow" %)USB TTL RXD <~-~-~-~-> UART_TXD 220 220 173 +== 2.3 Uplink Payload == 221 221 222 -In the PC, use below serial tool settings: 223 223 224 -* Baud: (% style="color:green" %)**9600** 225 -* Data bits:** (% style="color:green" %)8(%%)** 226 -* Stop bits: (% style="color:green" %)**1** 227 -* Parity: (% style="color:green" %)**None** 228 -* Flow Control: (% style="color:green" %)**None** 176 +=== 2.3.1 MOD~=0(Default Mode) === 229 229 178 +LSE01 will uplink payload via LoRaWAN with below payload format: 179 + 230 230 ((( 231 - Make sure the switch is in FLASHposition,thenpower ondeviceby connecting the jumper on NDDS75. NDDS75 will output systeminfoonce power onas below,we can enter the (% style="color:green" %)**password:12345678**(%%)to access AT Command input.181 +Uplink payload includes in total 11 bytes. 232 232 ))) 233 233 234 -[[image:1657329814315-101.png]] 184 +(% border="1" cellspacing="10" style="background-color:#ffffcc; width:500px" %) 185 +|((( 186 +**Size** 235 235 188 +**(bytes)** 189 +)))|**2**|**2**|**2**|**2**|**2**|**1** 190 +|**Value**|[[BAT>>||anchor="H2.3.3BatteryInfo"]]|((( 191 +Temperature 236 236 237 -((( 238 -(% style="color:red" %)**Note: the valid AT Commands can be found at: **(%%)**[[https:~~/~~/www.dropbox.com/sh/aaq2xcl0bzfu0yd/AAAEAHRa7Io_465ds4Y7-F3aa?dl=0>>https://www.dropbox.com/sh/aaq2xcl0bzfu0yd/AAAEAHRa7Io_465ds4Y7-F3aa?dl=0]]** 193 +(Reserve, Ignore now) 194 +)))|[[Soil Moisture>>||anchor="H2.3.4SoilMoisture"]]|[[Soil Temperature>>||anchor="H2.3.5SoilTemperature"]]|[[Soil Conductivity (EC)>>||anchor="H2.3.6SoilConductivity28EC29"]]|((( 195 +MOD & Digital Interrupt 196 + 197 +(Optional) 239 239 ))) 240 240 200 +=== 2.3.2 MOD~=1(Original value) === 241 241 202 +This mode can get the original AD value of moisture and original conductivity (with temperature drift compensation). 242 242 243 -=== 2.2.4 Use CoAP protocol to uplink data === 204 +(% border="1" cellspacing="10" style="background-color:#ffffcc; width:500px" %) 205 +|((( 206 +**Size** 244 244 208 +**(bytes)** 209 +)))|**2**|**2**|**2**|**2**|**2**|**1** 210 +|**Value**|[[BAT>>||anchor="H2.3.3BatteryInfo"]]|((( 211 +Temperature 245 245 246 -(% style="color:red" %)**Note: if you don't have CoAP server, you can refer this link to set up one: **(%%)**[[http:~~/~~/wiki.dragino.com/xwiki/bin/view/Main/Set%20up%20CoAP%20Server/>>http://wiki.dragino.com/xwiki/bin/view/Main/Set%20up%20CoAP%20Server/]]** 213 +(Reserve, Ignore now) 214 +)))|[[Soil Moisture>>||anchor="H2.3.4SoilMoisture"]](raw)|[[Soil Temperature>>||anchor="H2.3.5SoilTemperature"]]|[[Soil Conductivity (EC)>>||anchor="H2.3.6SoilConductivity28EC29"]](raw)|((( 215 +MOD & Digital Interrupt 247 247 217 +(Optional) 218 +))) 248 248 220 +=== 2.3.3 Battery Info === 221 + 249 249 ((( 250 - **Use belowcommands:**223 +Check the battery voltage for LSE01. 251 251 ))) 252 252 253 - *(((254 - (% style="color:blue"%)**AT+PRO=1**(%%) ~/~/ Set to use CoAP protocol to uplink226 +((( 227 +Ex1: 0x0B45 = 2885mV 255 255 ))) 256 -* ((( 257 -(% style="color:blue" %)**AT+SERVADDR=120.24.4.116,5683 ** (%%)~/~/ to set CoAP server address and port 258 -))) 259 -* ((( 260 -(% style="color:blue" %)**AT+URI=5,11,"mqtt",11,"coap",12,"0",15,"c=text1",23,"0" ** (%%) ~/~/Set COAP resource path 261 -))) 262 262 263 263 ((( 264 - Forparameterdescription,please refer to AT command set231 +Ex2: 0x0B49 = 2889mV 265 265 ))) 266 266 267 -[[image:1657330452568-615.png]] 268 268 269 269 236 +=== 2.3.4 Soil Moisture === 270 270 271 271 ((( 272 - Afterconfigure the serveraddressand(%style="color:green"%)**resetthedevice**(%%)(viaAT+ATZ),NDDS75willstart touplink sensorvaluestoCoAPserver.239 +Get the moisture content of the soil. The value range of the register is 0-10000(Decimal), divide this value by 100 to get the percentage of moisture in the soil. 273 273 ))) 274 274 275 -[[image:1657330472797-498.png]] 242 +((( 243 +For example, if the data you get from the register is __0x05 0xDC__, the moisture content in the soil is 244 +))) 276 276 246 +((( 247 + 248 +))) 277 277 250 +((( 251 +(% style="color:#4f81bd" %)**05DC(H) = 1500(D) /100 = 15%.** 252 +))) 278 278 279 -=== 2.2.5 Use UDP protocol to uplink data(Default protocol) === 280 280 281 281 282 -* (% style="color:blue" %)**AT+PRO=2 ** (%%) ~/~/ Set to use UDP protocol to uplink 283 -* (% style="color:blue" %)**AT+SERVADDR=120.24.4.116,5601 ** (%%) ~/~/ to set UDP server address and port 284 -* (% style="color:blue" %)**AT+CFM=1 ** (%%) ~/~/ If the server does not respond, this command is unnecessary 256 +=== 2.3.5 Soil Temperature === 285 285 258 +((( 259 + Get the temperature in the soil. The value range of the register is -4000 - +800(Decimal), divide this value by 100 to get the temperature in the soil. For example, if the data you get from the register is 0x09 0xEC, the temperature content in the soil is 260 +))) 286 286 287 -[[image:1657330501006-241.png]] 262 +((( 263 +**Example**: 264 +))) 288 288 266 +((( 267 +If payload is 0105H: ((0x0105 & 0x8000)>>15 === 0),temp = 0105(H)/100 = 2.61 °C 268 +))) 289 289 290 -[[image:1657330533775-472.png]] 270 +((( 271 +If payload is FF7EH: ((FF7E & 0x8000)>>15 ===1),temp = (FF7E(H)-FFFF(H))/100 = -1.29 °C 272 +))) 291 291 292 292 293 293 294 -=== 2. 2.6Use MQTT protocoltouplinkdata===276 +=== 2.3.6 Soil Conductivity (EC) === 295 295 278 +((( 279 +Obtain (% style="color:#4f81bd" %)**__soluble salt concentration__**(%%) in soil or (% style="color:#4f81bd" %)**__soluble ion concentration in liquid fertilizer__**(%%) or (% style="color:#4f81bd" %)**__planting medium__**(%%). The value range of the register is 0 - 20000(Decimal)( Can be greater than 20000). 280 +))) 296 296 297 -* (% style="color:blue" %)**AT+PRO=3 ** (%%) ~/~/Set to use MQTT protocol to uplink 298 -* (% style="color:blue" %)**AT+SERVADDR=120.24.4.116,1883 ** (%%) ~/~/Set MQTT server address and port 299 -* (% style="color:blue" %)**AT+CLIENT=CLIENT ** (%%)~/~/Set up the CLIENT of MQTT 300 -* (% style="color:blue" %)**AT+UNAME=UNAME **(%%)~/~/Set the username of MQTT 301 -* (% style="color:blue" %)**AT+PWD=PWD **(%%)~/~/Set the password of MQTT 302 -* (% style="color:blue" %)**AT+PUBTOPIC=NDDS75_PUB **(%%)~/~/Set the sending topic of MQTT 303 -* (% style="color:blue" %)**AT+SUBTOPIC=NDDS75_SUB **(%%) ~/~/Set the subscription topic of MQTT 282 +((( 283 +For example, if the data you get from the register is 0x00 0xC8, the soil conductivity is 00C8(H) = 200(D) = 200 uS/cm. 284 +))) 304 304 286 +((( 287 +Generally, the EC value of irrigation water is less than 800uS / cm. 288 +))) 305 305 306 -[[image:1657249978444-674.png]] 290 +((( 291 + 292 +))) 307 307 308 - 309 -[[image:1657330723006-866.png]] 310 - 311 - 312 312 ((( 313 - MQTTprotocol has a much higher power consumption compare vs UDP / CoAP protocol. Please check the power analyze document and adjust the uplink period to a suitable interval.295 + 314 314 ))) 315 315 298 +=== 2.3.7 MOD === 316 316 300 +Firmware version at least v2.1 supports changing mode. 317 317 318 - ===2.2.7 UseTCPprotocol to uplink data===302 +For example, bytes[10]=90 319 319 304 +mod=(bytes[10]>>7)&0x01=1. 320 320 321 -* (% style="color:blue" %)**AT+PRO=4 ** (%%) ~/~/ Set to use TCP protocol to uplink 322 -* (% style="color:blue" %)**AT+SERVADDR=120.24.4.116,5600 **(%%) ~/~/ to set TCP server address and port 323 323 307 +**Downlink Command:** 324 324 325 - [[image:image-20220709093918-1.png]]309 +If payload = 0x0A00, workmode=0 326 326 311 +If** **payload =** **0x0A01, workmode=1 327 327 328 -[[image:image-20220709093918-2.png]] 329 329 330 330 315 +=== 2.3.8 Decode payload in The Things Network === 331 331 332 - ===2.2.8ChangeUpdateInterval===317 +While using TTN network, you can add the payload format to decode the payload. 333 333 334 334 335 - User can use below command to changethe (% style="color:green" %)**uplink interval**.320 +[[image:1654505570700-128.png]] 336 336 337 -* (% style="color:blue" %)**AT+TDC=600 ** (%%)~/~/ Set Update Interval to 600s 338 - 339 339 ((( 340 - (%style="color:red"%)**NOTE:**323 +The payload decoder function for TTN is here: 341 341 ))) 342 342 343 343 ((( 344 - (%style="color:red"%)**1. By default,thedevicewillsendan uplinkmessage every 1 hour.**327 +LSE01 TTN Payload Decoder: [[https:~~/~~/www.dropbox.com/sh/si8icbrjlamxqdb/AAACYwjsxxr5fj_vpqRtrETAa?dl=0>>https://www.dropbox.com/sh/si8icbrjlamxqdb/AAACYwjsxxr5fj_vpqRtrETAa?dl=0]] 345 345 ))) 346 346 347 347 331 +== 2.4 Uplink Interval == 348 348 349 - ==2.3UplinkPayload ==333 +The LSE01 by default uplink the sensor data every 20 minutes. User can change this interval by AT Command or LoRaWAN Downlink Command. See this link: [[Change Uplink Interval>>doc:Main.End Device AT Commands and Downlink Command.WebHome||anchor="H4.1ChangeUplinkInterval"]] 350 350 351 351 352 -In this mode, uplink payload includes in total 14 bytes 353 353 337 +== 2.5 Downlink Payload == 354 354 355 -(% border="1" cellspacing="10" style="background-color:#ffffcc; color:green; width:440px" %) 356 -|=(% style="width: 60px;" %)((( 357 -**Size(bytes)** 358 -)))|=(% style="width: 60px;" %)**6**|=(% style="width: 35px;" %)2|=(% style="width: 35px;" %)**2**|=(% style="width: 80px;" %)**1**|=(% style="width: 100px;" %)**2**|=(% style="width: 60px;" %)**1** 359 -|(% style="width:97px" %)**Value**|(% style="width:83px" %)[[Device ID>>||anchor="H2.4.1A0A0DeviceID"]]|(% style="width:41px" %)[[Ver>>||anchor="H2.4.2A0VersionInfo"]]|(% style="width:46px" %)[[BAT>>||anchor="H2.4.3A0BatteryInfo"]]|(% style="width:123px" %)[[Signal Strength>>||anchor="H2.4.4A0SignalStrength"]]|(% style="width:120px" %)[[Distance (unit: mm)>>||anchor="H2.4.5A0Distance"]]|(% style="width:80px" %)[[Interrupt>>||anchor="H2.4.6A0DigitalInterrupt"]] 339 +By default, LSE50 prints the downlink payload to console port. 360 360 341 +[[image:image-20220606165544-8.png]] 342 + 343 + 361 361 ((( 362 - Ifwe usetheMQTTclient tosubscribeto this MQTT topic, we can see the following information when the NDDS751 uplink data.345 +(% style="color:blue" %)**Examples:** 363 363 ))) 364 364 348 +((( 349 + 350 +))) 365 365 366 -[[image:1657331036973-987.png]] 352 +* ((( 353 +(% style="color:blue" %)**Set TDC** 354 +))) 367 367 356 +((( 357 +If the payload=0100003C, it means set the END Node’s TDC to 0x00003C=60(S), while type code is 01. 358 +))) 368 368 369 369 ((( 370 - The payloadisASCIIstring,representative same HEX:361 +Payload: 01 00 00 1E TDC=30S 371 371 ))) 372 372 373 373 ((( 374 -0 x72403155615900640c6c19029200where:365 +Payload: 01 00 00 3C TDC=60S 375 375 ))) 376 376 377 - *(((378 - DeviceID: 0x724031556159 = 724031556159368 +((( 369 + 379 379 ))) 371 + 380 380 * ((( 381 - Version:0x0064=100=1.0.0373 +(% style="color:blue" %)**Reset** 382 382 ))) 383 383 384 - *(((385 - BAT:0x0c6c=3180mV=3.180V376 +((( 377 +If payload = 0x04FF, it will reset the LSE01 386 386 ))) 387 -* ((( 388 -Signal: 0x19 = 25 389 -))) 390 -* ((( 391 -Distance: 0x0292= 658 mm 392 -))) 393 -* ((( 394 -Interrupt: 0x00 = 0 395 395 396 396 381 +* (% style="color:blue" %)**CFM** 397 397 398 - 399 -))) 383 +Downlink Payload: 05000001, Set AT+CFM=1 or 05000000 , set AT+CFM=0 400 400 401 -== 2.4 Payload Explanation and Sensor Interface == 402 402 403 403 404 -== =2.4.1Device ID===387 +== 2.6 Show Data in DataCake IoT Server == 405 405 406 - 407 407 ((( 408 - Bydefault,theDeviceIDequalhelast6bytesofIMEI.390 +[[DATACAKE>>url:https://datacake.co/]] provides a human friendly interface to show the sensor data, once we have data in TTN, we can use [[DATACAKE>>url:https://datacake.co/]] to connect to TTN and see the data in DATACAKE. Below are the steps: 409 409 ))) 410 410 411 411 ((( 412 -User can use (% style="color:blue" %)**AT+DEUI**(%%) to set Device ID 413 - 414 414 415 415 ))) 416 416 417 417 ((( 418 -** Example:**398 +(% style="color:blue" %)**Step 1**(%%): Be sure that your device is programmed and properly connected to the network at this time. 419 419 ))) 420 420 421 421 ((( 422 - AT+DEUI=A84041F15612402 +(% style="color:blue" %)**Step 2**(%%): To configure the Application to forward data to DATACAKE you will need to add integration. To add the DATACAKE integration, perform the following steps: 423 423 ))) 424 424 425 -((( 426 -The Device ID is stored in a none-erase area, Upgrade the firmware or run **AT+FDR** won't erase Device ID. 427 -))) 428 428 406 +[[image:1654505857935-743.png]] 429 429 430 430 431 - ===2.4.2 VersionInfo ===409 +[[image:1654505874829-548.png]] 432 432 433 433 434 -((( 435 -Specify the software version: 0x64=100, means firmware version 1.00. 436 -))) 412 +(% style="color:blue" %)**Step 3**(%%)**:** Create an account or log in Datacake. 437 437 438 -((( 439 -For example: 0x00 64 : this device is NDDS75 with firmware version 1.0.0. 440 -))) 414 +(% style="color:blue" %)**Step 4**(%%)**:** Search the LSE01 and add DevEUI. 441 441 442 442 417 +[[image:1654505905236-553.png]] 443 443 444 -=== 2.4.3 Battery Info === 445 445 420 +After added, the sensor data arrive TTN, it will also arrive and show in Mydevices. 446 446 447 -((( 448 -Ex1: 0x0B45 = 2885mV 449 -))) 422 +[[image:1654505925508-181.png]] 450 450 451 -((( 452 -Ex2: 0x0B49 = 2889mV 453 -))) 454 454 455 455 426 +== 2.7 Frequency Plans == 456 456 457 - ===2.4.4SignalStrength===428 +The LSE01 uses OTAA mode and below frequency plans by default. If user want to use it with different frequency plan, please refer the AT command sets. 458 458 459 459 460 -((( 461 -NB-IoT Network signal Strength. 462 -))) 431 +=== 2.7.1 EU863-870 (EU868) === 463 463 464 -((( 465 -**Ex1: 0x1d = 29** 466 -))) 433 +(% style="color:#037691" %)** Uplink:** 467 467 468 -((( 469 -(% style="color:blue" %)**0**(%%) -113dBm or less 470 -))) 435 +868.1 - SF7BW125 to SF12BW125 471 471 472 -((( 473 -(% style="color:blue" %)**1**(%%) -111dBm 474 -))) 437 +868.3 - SF7BW125 to SF12BW125 and SF7BW250 475 475 476 -((( 477 -(% style="color:blue" %)**2...30**(%%) -109dBm... -53dBm 478 -))) 439 +868.5 - SF7BW125 to SF12BW125 479 479 480 -((( 481 -(% style="color:blue" %)**31** (%%) -51dBm or greater 482 -))) 441 +867.1 - SF7BW125 to SF12BW125 483 483 484 -((( 485 -(% style="color:blue" %)**99** (%%) Not known or not detectable 486 -))) 443 +867.3 - SF7BW125 to SF12BW125 487 487 445 +867.5 - SF7BW125 to SF12BW125 488 488 447 +867.7 - SF7BW125 to SF12BW125 489 489 490 - ===2.4.5Distance===449 +867.9 - SF7BW125 to SF12BW125 491 491 451 +868.8 - FSK 492 492 493 -Get the distance. Flat object range 280mm - 7500mm. 494 494 495 -((( 496 -For example, if the data you get from the register is **__0x0B 0x05__**, the distance between the sensor and the measured object is 497 -))) 454 +(% style="color:#037691" %)** Downlink:** 498 498 499 -((( 500 -((( 501 -(% style="color:blue" %)** 0B05(H) = 2821(D) = 2821mm.** 502 -))) 503 -))) 456 +Uplink channels 1-9 (RX1) 504 504 505 -((( 506 - 507 -))) 458 +869.525 - SF9BW125 (RX2 downlink only) 508 508 509 -((( 510 - 511 -))) 512 512 513 -=== 2.4.6 Digital Interrupt === 514 514 462 +=== 2.7.2 US902-928(US915) === 515 515 516 -((( 517 -Digital Interrupt refers to pin (% style="color:blue" %)**GPIO_EXTI**(%%), and there are different trigger methods. When there is a trigger, the NDDS75 will send a packet to the server. 518 -))) 464 +Used in USA, Canada and South America. Default use CHE=2 519 519 520 -((( 521 -The command is: 522 -))) 466 +(% style="color:#037691" %)**Uplink:** 523 523 524 -((( 525 -(% style="color:blue" %)**AT+INTMOD=3 **(%%) ~/~/(more info about INMOD please refer [[**AT Command Manual**>>url:https://www.dragino.com/downloads/downloads/NB-IoT/NBSN95/DRAGINO_NBSN95-NB_AT%20Commands_v1.1.0.pdf]])**.** 526 -))) 468 +903.9 - SF7BW125 to SF10BW125 527 527 470 +904.1 - SF7BW125 to SF10BW125 528 528 529 -((( 530 -The lower four bits of this data field shows if this packet is generated by interrupt or not. Click here for the hardware and software set up. 531 -))) 472 +904.3 - SF7BW125 to SF10BW125 532 532 474 +904.5 - SF7BW125 to SF10BW125 533 533 534 -((( 535 -Example: 536 -))) 476 +904.7 - SF7BW125 to SF10BW125 537 537 538 -((( 539 -0x(00): Normal uplink packet. 540 -))) 478 +904.9 - SF7BW125 to SF10BW125 541 541 542 -((( 543 -0x(01): Interrupt Uplink Packet. 544 -))) 480 +905.1 - SF7BW125 to SF10BW125 545 545 482 +905.3 - SF7BW125 to SF10BW125 546 546 547 547 548 - ===2.4.7 +5V Output===485 +(% style="color:#037691" %)**Downlink:** 549 549 487 +923.3 - SF7BW500 to SF12BW500 550 550 551 -((( 552 -NDDS75 will enable +5V output before all sampling and disable the +5v after all sampling. 553 -))) 489 +923.9 - SF7BW500 to SF12BW500 554 554 491 +924.5 - SF7BW500 to SF12BW500 555 555 556 -((( 557 -The 5V output time can be controlled by AT Command. 493 +925.1 - SF7BW500 to SF12BW500 558 558 559 - 560 -))) 495 +925.7 - SF7BW500 to SF12BW500 561 561 562 -((( 563 -(% style="color:blue" %)**AT+5VT=1000** 497 +926.3 - SF7BW500 to SF12BW500 564 564 565 - 566 -))) 499 +926.9 - SF7BW500 to SF12BW500 567 567 568 -((( 569 -Means set 5V valid time to have 1000ms. So the real 5V output will actually have 1000ms + sampling time for other sensors. 570 -))) 501 +927.5 - SF7BW500 to SF12BW500 571 571 503 +923.3 - SF12BW500(RX2 downlink only) 572 572 573 573 574 -== 2.5 Downlink Payload == 575 575 507 +=== 2.7.3 CN470-510 (CN470) === 576 576 577 - By default,NDDS75 printsthe downlinkpayloadtoconsoleport.509 +Used in China, Default use CHE=1 578 578 579 - [[image:image-20220709100028-1.png]]511 +(% style="color:#037691" %)**Uplink:** 580 580 513 +486.3 - SF7BW125 to SF12BW125 581 581 582 -((( 583 -(% style="color:blue" %)**Examples:** 584 -))) 515 +486.5 - SF7BW125 to SF12BW125 585 585 586 -((( 587 - 588 -))) 517 +486.7 - SF7BW125 to SF12BW125 589 589 590 -* ((( 591 -(% style="color:blue" %)**Set TDC** 592 -))) 519 +486.9 - SF7BW125 to SF12BW125 593 593 594 -((( 595 -If the payload=0100003C, it means set the END Node's TDC to 0x00003C=60(S), while type code is 01. 596 -))) 521 +487.1 - SF7BW125 to SF12BW125 597 597 598 -((( 599 -Payload: 01 00 00 1E TDC=30S 600 -))) 523 +487.3 - SF7BW125 to SF12BW125 601 601 602 -((( 603 -Payload: 01 00 00 3C TDC=60S 604 -))) 525 +487.5 - SF7BW125 to SF12BW125 605 605 606 -((( 607 - 608 -))) 527 +487.7 - SF7BW125 to SF12BW125 609 609 610 -* ((( 611 -(% style="color:blue" %)**Reset** 612 -))) 613 613 614 -((( 615 -If payload = 0x04FF, it will reset the NDDS75 616 -))) 530 +(% style="color:#037691" %)**Downlink:** 617 617 532 +506.7 - SF7BW125 to SF12BW125 618 618 619 - *(%style="color:blue"%)**INTMOD**534 +506.9 - SF7BW125 to SF12BW125 620 620 621 -((( 622 -Downlink Payload: 06000003, Set AT+INTMOD=3 623 -))) 536 +507.1 - SF7BW125 to SF12BW125 624 624 538 +507.3 - SF7BW125 to SF12BW125 625 625 540 +507.5 - SF7BW125 to SF12BW125 626 626 627 - == 2.6LEDIndicator==542 +507.7 - SF7BW125 to SF12BW125 628 628 544 +507.9 - SF7BW125 to SF12BW125 629 629 630 - TheNDDS75has an internal LED which is toshow the status of different state.546 +508.1 - SF7BW125 to SF12BW125 631 631 548 +505.3 - SF12BW125 (RX2 downlink only) 632 632 633 -* When power on, NDDS75 will detect if sensor probe is connected, if probe detected, LED will blink four times. (no blinks in this step is no probe) 634 -* Then the LED will be on for 1 second means device is boot normally. 635 -* After NDDS75 join NB-IoT network. The LED will be ON for 3 seconds. 636 -* For each uplink probe, LED will be on for 500ms. 637 637 638 -((( 639 - 640 -))) 641 641 552 +=== 2.7.4 AU915-928(AU915) === 642 642 554 +Default use CHE=2 643 643 644 - ==2.7Firmware Change Log ==556 +(% style="color:#037691" %)**Uplink:** 645 645 558 +916.8 - SF7BW125 to SF12BW125 646 646 647 -((( 648 -Download URL & Firmware Change log: [[https:~~/~~/www.dropbox.com/sh/3hb94r49iszmstx/AADvSJcXxahEUfxqKWVnZx-La?dl=0>>https://www.dropbox.com/sh/3hb94r49iszmstx/AADvSJcXxahEUfxqKWVnZx-La?dl=0]] 649 -))) 560 +917.0 - SF7BW125 to SF12BW125 650 650 651 -((( 652 - 653 -))) 562 +917.2 - SF7BW125 to SF12BW125 654 654 655 -((( 656 -Upgrade Instruction: [[Upgrade Firmware>>||anchor="H5.1200BHowtoUpgradeFirmware"]] 657 -))) 564 +917.4 - SF7BW125 to SF12BW125 658 658 566 +917.6 - SF7BW125 to SF12BW125 659 659 568 +917.8 - SF7BW125 to SF12BW125 660 660 661 - == 2.8BatteryAnalysis ==570 +918.0 - SF7BW125 to SF12BW125 662 662 572 +918.2 - SF7BW125 to SF12BW125 663 663 664 -=== 2.8.1 Battery Type === 665 665 575 +(% style="color:#037691" %)**Downlink:** 666 666 577 +923.3 - SF7BW500 to SF12BW500 578 + 579 +923.9 - SF7BW500 to SF12BW500 580 + 581 +924.5 - SF7BW500 to SF12BW500 582 + 583 +925.1 - SF7BW500 to SF12BW500 584 + 585 +925.7 - SF7BW500 to SF12BW500 586 + 587 +926.3 - SF7BW500 to SF12BW500 588 + 589 +926.9 - SF7BW500 to SF12BW500 590 + 591 +927.5 - SF7BW500 to SF12BW500 592 + 593 +923.3 - SF12BW500(RX2 downlink only) 594 + 595 + 596 + 597 +=== 2.7.5 AS920-923 & AS923-925 (AS923) === 598 + 599 +(% style="color:#037691" %)**Default Uplink channel:** 600 + 601 +923.2 - SF7BW125 to SF10BW125 602 + 603 +923.4 - SF7BW125 to SF10BW125 604 + 605 + 606 +(% style="color:#037691" %)**Additional Uplink Channel**: 607 + 608 +(OTAA mode, channel added by JoinAccept message) 609 + 610 +(% style="color:#037691" %)**AS920~~AS923 for Japan, Malaysia, Singapore**: 611 + 612 +922.2 - SF7BW125 to SF10BW125 613 + 614 +922.4 - SF7BW125 to SF10BW125 615 + 616 +922.6 - SF7BW125 to SF10BW125 617 + 618 +922.8 - SF7BW125 to SF10BW125 619 + 620 +923.0 - SF7BW125 to SF10BW125 621 + 622 +922.0 - SF7BW125 to SF10BW125 623 + 624 + 625 +(% style="color:#037691" %)**AS923 ~~ AS925 for Brunei, Cambodia, Hong Kong, Indonesia, Laos, Taiwan, Thailand, Vietnam**: 626 + 627 +923.6 - SF7BW125 to SF10BW125 628 + 629 +923.8 - SF7BW125 to SF10BW125 630 + 631 +924.0 - SF7BW125 to SF10BW125 632 + 633 +924.2 - SF7BW125 to SF10BW125 634 + 635 +924.4 - SF7BW125 to SF10BW125 636 + 637 +924.6 - SF7BW125 to SF10BW125 638 + 639 + 640 +(% style="color:#037691" %)** Downlink:** 641 + 642 +Uplink channels 1-8 (RX1) 643 + 644 +923.2 - SF10BW125 (RX2) 645 + 646 + 647 + 648 +=== 2.7.6 KR920-923 (KR920) === 649 + 650 +Default channel: 651 + 652 +922.1 - SF7BW125 to SF12BW125 653 + 654 +922.3 - SF7BW125 to SF12BW125 655 + 656 +922.5 - SF7BW125 to SF12BW125 657 + 658 + 659 +(% style="color:#037691" %)**Uplink: (OTAA mode, channel added by JoinAccept message)** 660 + 661 +922.1 - SF7BW125 to SF12BW125 662 + 663 +922.3 - SF7BW125 to SF12BW125 664 + 665 +922.5 - SF7BW125 to SF12BW125 666 + 667 +922.7 - SF7BW125 to SF12BW125 668 + 669 +922.9 - SF7BW125 to SF12BW125 670 + 671 +923.1 - SF7BW125 to SF12BW125 672 + 673 +923.3 - SF7BW125 to SF12BW125 674 + 675 + 676 +(% style="color:#037691" %)**Downlink:** 677 + 678 +Uplink channels 1-7(RX1) 679 + 680 +921.9 - SF12BW125 (RX2 downlink only; SF12BW125 might be changed to SF9BW125) 681 + 682 + 683 + 684 +=== 2.7.7 IN865-867 (IN865) === 685 + 686 +(% style="color:#037691" %)** Uplink:** 687 + 688 +865.0625 - SF7BW125 to SF12BW125 689 + 690 +865.4025 - SF7BW125 to SF12BW125 691 + 692 +865.9850 - SF7BW125 to SF12BW125 693 + 694 + 695 +(% style="color:#037691" %) **Downlink:** 696 + 697 +Uplink channels 1-3 (RX1) 698 + 699 +866.550 - SF10BW125 (RX2) 700 + 701 + 702 + 703 + 704 +== 2.8 LED Indicator == 705 + 706 +The LSE01 has an internal LED which is to show the status of different state. 707 + 708 +* Blink once when device power on. 709 +* Solid ON for 5 seconds once device successful Join the network. 710 +* Blink once when device transmit a packet. 711 + 712 +== 2.9 Installation in Soil == 713 + 714 +**Measurement the soil surface** 715 + 716 + 717 +[[image:1654506634463-199.png]] 718 + 667 667 ((( 668 -The NDDS75 battery is a combination of an 8500mAh Li/SOCI2 Battery and a Super Capacitor. The battery is none-rechargeable battery type with a low discharge rate (<2% per year). This type of battery is commonly used in IoT devices such as water meter. 720 +((( 721 +Choose the proper measuring position. Avoid the probe to touch rocks or hard things. Split the surface soil according to the measured deep. Keep the measured as original density. Vertical insert the probe into the soil to be measured. Make sure not shake when inserting. 669 669 ))) 723 +))) 670 670 725 + 726 + 727 +[[image:1654506665940-119.png]] 728 + 671 671 ((( 672 - The batteryis designedto lastfor severalyearsdepends ontheactually use environmentand updateinterval.730 +Dig a hole with diameter > 20CM. 673 673 ))) 674 674 675 675 ((( 676 - The batteryrelateddocumentsasbelow:734 +Horizontal insert the probe to the soil and fill the hole for long term measurement. 677 677 ))) 678 678 679 -* [[Battery Dimension>>http://www.dragino.com/downloads/index.php?dir=datasheet/Battery/ER26500/]] 680 -* [[Lithium-Thionyl Chloride Battery datasheet>>http://www.dragino.com/downloads/index.php?dir=datasheet/Battery/ER26500/]] 681 -* [[Lithium-ion Battery-Capacitor datasheet>>http://www.dragino.com/downloads/index.php?dir=datasheet/Battery/ER26500/]] 682 682 738 +== 2.10 Firmware Change Log == 739 + 683 683 ((( 684 - [[image:image-20220709101450-2.png]]741 +**Firmware download link:** 685 685 ))) 686 686 744 +((( 745 +[[http:~~/~~/www.dragino.com/downloads/index.php?dir=LoRa_End_Node/LSE01/Firmware/>>url:http://www.dragino.com/downloads/index.php?dir=LoRa_End_Node/LSE01/Firmware/]] 746 +))) 687 687 748 +((( 749 + 750 +))) 688 688 689 -=== 2.8.2 Power consumption Analyze === 752 +((( 753 +**Firmware Upgrade Method: **[[Firmware Upgrade Instruction>>doc:Main.Firmware Upgrade Instruction for STM32 base products.WebHome]] 754 +))) 690 690 756 +((( 757 + 758 +))) 691 691 692 692 ((( 693 - Dragino battery powered product are all runs in Low Power mode.We have an update battery calculator which base on the measurement of the real device.User can use this calculator to check the battery life and calculate the battery life if want to use different transmit interval.761 +**V1.0.** 694 694 ))) 695 695 764 +((( 765 +Release 766 +))) 696 696 768 + 769 +== 2.11 Battery Analysis == 770 + 771 +=== 2.11.1 Battery Type === 772 + 697 697 ((( 698 - Instruction touse as below:774 +The LSE01 battery is a combination of a 4000mAh Li/SOCI2 Battery and a Super Capacitor. The battery is non-rechargeable battery type with a low discharge rate (<2% per year). This type of battery is commonly used in IoT devices such as water meter. 699 699 ))) 700 700 701 701 ((( 702 - (% style="color:blue" %)**Step 1: **(%%)Downlink theup-to-date DRAGINO_Battery_Life_Prediction_Table.xlsxfrom: [[https:~~/~~/www.dragino.com/downloads/index.php?dir=LoRa_End_Node/Battery_Analyze/>>url:https://www.dragino.com/downloads/index.php?dir=LoRa_End_Node/Battery_Analyze/]]778 +The battery is designed to last for more than 5 years for the LSN50. 703 703 ))) 704 704 705 - 706 706 ((( 707 -(% style="color:blue" %)**Step 2: **(%%) Open it and choose 782 +((( 783 +The battery-related documents are as below: 708 708 ))) 785 +))) 709 709 710 710 * ((( 711 - Product Model788 +[[Battery Dimension>>https://www.dragino.com/downloads/index.php?dir=datasheet/Battery/]], 712 712 ))) 713 713 * ((( 714 - UplinkInterval791 +[[Lithium-Thionyl Chloride Battery datasheet>>https://www.dragino.com/downloads/index.php?dir=datasheet/Battery/]], 715 715 ))) 716 716 * ((( 717 - WorkingMode794 +[[Lithium-ion Battery-Capacitor datasheet>>https://www.dragino.com/downloads/index.php?dir=datasheet/Battery/]], [[Tech Spec>>https://www.dragino.com/downloads/index.php?dir=datasheet/Battery/]] 718 718 ))) 719 719 720 -((( 721 -And the Life expectation in difference case will be shown on the right. 722 -))) 797 + [[image:image-20220610172436-1.png]] 723 723 724 -[[image:image-20220709110451-3.png]] 725 725 726 726 801 +=== 2.11.2 Battery Note === 727 727 728 -=== 2.8.3 Battery Note === 729 - 730 - 731 731 ((( 732 732 The Li-SICO battery is designed for small current / long period application. It is not good to use a high current, short period transmit method. The recommended minimum period for use of this battery is 5 minutes. If you use a shorter period time to transmit LoRa, then the battery life may be decreased. 733 733 ))) ... ... @@ -734,178 +734,302 @@ 734 734 735 735 736 736 737 -=== 2. 8.4Replace the battery ===809 +=== 2.11.3 Replace the battery === 738 738 811 +((( 812 +If Battery is lower than 2.7v, user should replace the battery of LSE01. 813 +))) 739 739 740 740 ((( 741 - Thedefault battery packofNDDS75includes aER26500plussupercapacitor.Ifuser can'tfind thispacklocally,theycanfindER26500 orequivalencewithouttheSPC1520capacitor,whichwillalsowork inmost case.TheSPCcanenlargethebatterylifeforhighfrequencyuse(updateperiodbelow5minutes).816 +You can change the battery in the LSE01.The type of battery is not limited as long as the output is between 3v to 3.6v. On the main board, there is a diode (D1) between the battery and the main circuit. If you need to use a battery with less than 3.3v, please remove the D1 and shortcut the two pads of it so there won’t be voltage drop between battery and main board. 742 742 ))) 743 743 819 +((( 820 +The default battery pack of LSE01 includes a ER18505 plus super capacitor. If user can’t find this pack locally, they can find ER18505 or equivalence, which will also work in most case. The SPC can enlarge the battery life for high frequency use (update period below 5 minutes) 821 +))) 744 744 745 745 746 -= 3. Access NB-IoT Module = 747 747 825 += 3. Using the AT Commands = 748 748 749 -((( 750 -Users can directly access the AT command set of the NB-IoT module. 751 -))) 827 +== 3.1 Access AT Commands == 752 752 753 -((( 754 -The AT Command set can refer the BC35-G NB-IoT Module AT Command: [[https:~~/~~/www.dragino.com/downloads/index.php?dir=datasheet/other_vendors/BC35-G/>>url:https://www.dragino.com/downloads/index.php?dir=datasheet/other_vendors/BC35-G/]] 755 755 756 - 757 -))) 830 +LSE01 supports AT Command set in the stock firmware. You can use a USB to TTL adapter to connect to LSE01 for using AT command, as below. 758 758 759 -[[image:165 7333200519-600.png]]832 +[[image:1654501986557-872.png||height="391" width="800"]] 760 760 761 761 835 +Or if you have below board, use below connection: 762 762 763 -= 4. Using the AT Commands = 764 764 838 +[[image:1654502005655-729.png||height="503" width="801"]] 765 765 766 -== 4.1 Access AT Commands == 767 767 768 768 769 - Seethislinkfordetail: [[https:~~/~~/www.dropbox.com/sh/aaq2xcl0bzfu0yd/AAAEAHRa7Io_465ds4Y7-F3aa?dl=0>>https://www.dropbox.com/sh/aaq2xcl0bzfu0yd/AAAEAHRa7Io_465ds4Y7-F3aa?dl=0]]842 +In the PC, you need to set the serial baud rate to (% style="color:green" %)**9600**(%%) to access the serial console for LSE01. LSE01 will output system info once power on as below: 770 770 771 771 772 - AT+<CMD>?: Helpon<CMD>845 + [[image:1654502050864-459.png||height="564" width="806"]] 773 773 774 -AT+<CMD> : Run <CMD> 775 775 776 - AT+<CMD>=<value>:Set thevalue848 +Below are the available commands, a more detailed AT Command manual can be found at [[AT Command Manual>>https://www.dropbox.com/sh/qr6vproz4z4kzjz/AAAD48h3OyWrU1hq_Cqm8jIwa?dl=0]]: [[https:~~/~~/www.dropbox.com/sh/qr6vproz4z4kzjz/AAAD48h3OyWrU1hq_Cqm8jIwa?dl=0>>https://www.dropbox.com/sh/qr6vproz4z4kzjz/AAAD48h3OyWrU1hq_Cqm8jIwa?dl=0]] 777 777 778 -AT+<CMD>=? : Get the value 779 779 851 +(% style="background-color:#dcdcdc" %)**AT+<CMD>=?AT+<CMD>? **(%%) : Help on <CMD> 780 780 853 +(% style="background-color:#dcdcdc" %)**AT+<CMD>=?AT+<CMD> **(%%) : Run <CMD> 854 + 855 +(% style="background-color:#dcdcdc" %)**AT+<CMD>=?AT+<CMD>=<value>**(%%) : Set the value 856 + 857 +(% style="background-color:#dcdcdc" %)**AT+<CMD>=?AT+<CMD>=?**(%%) : Get the value 858 + 859 + 781 781 (% style="color:#037691" %)**General Commands**(%%) 782 782 783 -AT 862 +(% style="background-color:#dcdcdc" %)**AT**(%%) : Attention 784 784 785 -AT? 864 +(% style="background-color:#dcdcdc" %)**AT?**(%%) : Short Help 786 786 787 -ATZ 866 +(% style="background-color:#dcdcdc" %)**ATZ**(%%) : MCU Reset 788 788 789 -AT+TDC 868 +(% style="background-color:#dcdcdc" %)**AT+TDC**(%%) : Application Data Transmission Interval 790 790 791 -AT+CFG : Print all configurations 792 792 793 - AT+CFGMOD: Workingmode selection871 +(% style="color:#037691" %)**Keys, IDs and EUIs management** 794 794 795 -AT+I NTMOD:Setthe trigger interruptmode873 +(% style="background-color:#dcdcdc" %)**AT+APPEUI**(%%) : Application EUI 796 796 797 -AT+ 5VTSetextend the timeof5V power875 +(% style="background-color:#dcdcdc" %)**AT+APPKEY**(%%) : Application Key 798 798 799 -AT+P ROChooseagreement877 +(% style="background-color:#dcdcdc" %)**AT+APPSKEY**(%%) : Application Session Key 800 800 801 -AT+ WEIGREGet weightorsetweight to 0879 +(% style="background-color:#dcdcdc" %)**AT+DADDR**(%%) : Device Address 802 802 803 -AT+ WEIGAPGet or SettheGapValue of weight881 +(% style="background-color:#dcdcdc" %)**AT+DEUI**(%%) : Device EUI 804 804 805 -AT+ RXDL: Extendthe sendingandreceivingtime883 +(% style="background-color:#dcdcdc" %)**AT+NWKID**(%%) : Network ID (You can enter this command change only after successful network connection) 806 806 807 -AT+ CNTFACGettcountingparameters885 +(% style="background-color:#dcdcdc" %)**AT+NWKSKEY**(%%) : Network Session Key Joining and sending date on LoRa network 808 808 809 -AT+ SERVADDR:ServerAddress887 +(% style="background-color:#dcdcdc" %)**AT+CFM**(%%) : Confirm Mode 810 810 889 +(% style="background-color:#dcdcdc" %)**AT+CFS**(%%) : Confirm Status 811 811 812 -(% style="color:# 037691" %)**COAPManagement**891 +(% style="background-color:#dcdcdc" %)**AT+JOIN**(%%) : Join LoRa? Network 813 813 814 -AT+ URIsourceparameters893 +(% style="background-color:#dcdcdc" %)**AT+NJM**(%%) : LoRa? Network Join Mode 815 815 895 +(% style="background-color:#dcdcdc" %)**AT+NJS**(%%) : LoRa? Network Join Status 816 816 817 -(% style="color:# 037691" %)**UDPManagement**897 +(% style="background-color:#dcdcdc" %)**AT+RECV**(%%) : Print Last Received Data in Raw Format 818 818 819 -AT+C FM:Uploadconfirmationmode (onlyvalid forUDP)899 +(% style="background-color:#dcdcdc" %)**AT+RECVB**(%%) : Print Last Received Data in Binary Format 820 820 901 +(% style="background-color:#dcdcdc" %)**AT+SEND**(%%) : Send Text Data 821 821 822 -(% style="color:# 037691" %)**MQTTManagement**903 +(% style="background-color:#dcdcdc" %)**AT+SENB**(%%) : Send Hexadecimal Data 823 823 824 -AT+CLIENT : Get or Set MQTT client 825 825 826 - AT+UNAMEGetSetMQTT Username906 +(% style="color:#037691" %)**LoRa Network Management** 827 827 828 -AT+ PWDGetor SetMQTT password908 +(% style="background-color:#dcdcdc" %)**AT+ADR**(%%) : Adaptive Rate 829 829 830 -AT+ PUBTOPICGetorSetMQTTpublishtopic910 +(% style="background-color:#dcdcdc" %)**AT+CLASS**(%%) : LoRa Class(Currently only support class A 831 831 832 -AT+ SUBTOPIC :GetorSetMQTT subscriptiontopic912 +(% style="background-color:#dcdcdc" %)**AT+DCS**(%%) : Duty Cycle Setting 833 833 914 +(% style="background-color:#dcdcdc" %)**AT+DR**(%%) : Data Rate (Can Only be Modified after ADR=0) 834 834 835 -(% style="color:# 037691" %)**Information**916 +(% style="background-color:#dcdcdc" %)**AT+FCD**(%%) : Frame Counter Downlink 836 836 837 -AT+F DRctoryDataReset918 +(% style="background-color:#dcdcdc" %)**AT+FCU**(%%) : Frame Counter Uplink 838 838 839 -AT+ PWORDSerialAccessPassword920 +(% style="background-color:#dcdcdc" %)**AT+JN1DL**(%%) : Join Accept Delay1 840 840 922 +(% style="background-color:#dcdcdc" %)**AT+JN2DL**(%%) : Join Accept Delay2 841 841 924 +(% style="background-color:#dcdcdc" %)**AT+PNM**(%%) : Public Network Mode 842 842 843 -= 5.FAQ=926 +(% style="background-color:#dcdcdc" %)**AT+RX1DL**(%%) : Receive Delay1 844 844 928 +(% style="background-color:#dcdcdc" %)**AT+RX2DL**(%%) : Receive Delay2 845 845 846 -= =5.1How to UpgradeFirmware==930 +(% style="background-color:#dcdcdc" %)**AT+RX2DR**(%%) : Rx2 Window Data Rate 847 847 932 +(% style="background-color:#dcdcdc" %)**AT+RX2FQ**(%%) : Rx2 Window Frequency 848 848 934 +(% style="background-color:#dcdcdc" %)**AT+TXP**(%%) : Transmit Power 935 + 936 +(% style="background-color:#dcdcdc" %)**AT+ MOD**(%%) : Set work mode 937 + 938 + 939 +(% style="color:#037691" %)**Information** 940 + 941 +(% style="background-color:#dcdcdc" %)**AT+RSSI**(%%) : RSSI of the Last Received Packet 942 + 943 +(% style="background-color:#dcdcdc" %)**AT+SNR**(%%) : SNR of the Last Received Packet 944 + 945 +(% style="background-color:#dcdcdc" %)**AT+VER**(%%) : Image Version and Frequency Band 946 + 947 +(% style="background-color:#dcdcdc" %)**AT+FDR**(%%) : Factory Data Reset 948 + 949 +(% style="background-color:#dcdcdc" %)**AT+PORT**(%%) : Application Port 950 + 951 +(% style="background-color:#dcdcdc" %)**AT+CHS**(%%) : Get or Set Frequency (Unit: Hz) for Single Channel Mode 952 + 953 + (% style="background-color:#dcdcdc" %)**AT+CHE**(%%) : Get or Set eight channels mode, Only for US915, AU915, CN470 954 + 955 + 956 += 4. FAQ = 957 + 958 +== 4.1 How to change the LoRa Frequency Bands/Region? == 959 + 849 849 ((( 850 -User can upgrade the firmware for 1) bug fix, 2) new feature release. 961 +You can follow the instructions for [[how to upgrade image>>||anchor="H2.10200BFirmwareChangeLog"]]. 962 +When downloading the images, choose the required image file for download. 851 851 ))) 852 852 853 853 ((( 854 - Pleasesee this link for how to upgrade: [[http:~~/~~/wiki.dragino.com/xwiki/bin/view/Main/Firmware%20Upgrade%20Instruction%20for%20STM32%20base%20products/#H2.HardwareUpgradeMethodSupportList>>http://wiki.dragino.com/xwiki/bin/view/Main/Firmware%20Upgrade%20Instruction%20for%20STM32%20base%20products/#H2.HardwareUpgradeMethodSupportList]]966 + 855 855 ))) 856 856 857 857 ((( 858 - (%style="color:red"%)**Notice,NDDS75andLDDS75share thememotherboard.Theyuse thesameconnection andmethodto update.**970 +How to set up LSE01 to work in 8 channel mode By default, the frequency bands US915, AU915, CN470 work in 72 frequencies. Many gateways are 8 channel gateways, and in this case, the OTAA join time and uplink schedule is long and unpredictable while the end node is hopping in 72 frequencies. 859 859 ))) 860 860 973 +((( 974 + 975 +))) 861 861 977 +((( 978 +You can configure the end node to work in 8 channel mode by using the AT+CHE command. The 500kHz channels are always included for OTAA. 979 +))) 862 862 863 -= 6. Trouble Shooting = 981 +((( 982 + 983 +))) 864 864 985 +((( 986 +For example, in **US915** band, the frequency table is as below. By default, the end node will use all channels (0~~71) for OTAA Join process. After the OTAA Join, the end node will use these all channels (0~~71) to send uplink packets. 987 +))) 865 865 866 - == 6.1 Connection problemwhen uploadingfirmware==989 +[[image:image-20220606154726-3.png]] 867 867 868 868 992 +When you use the TTN network, the US915 frequency bands use are: 993 + 994 +* 903.9 - SF7BW125 to SF10BW125 995 +* 904.1 - SF7BW125 to SF10BW125 996 +* 904.3 - SF7BW125 to SF10BW125 997 +* 904.5 - SF7BW125 to SF10BW125 998 +* 904.7 - SF7BW125 to SF10BW125 999 +* 904.9 - SF7BW125 to SF10BW125 1000 +* 905.1 - SF7BW125 to SF10BW125 1001 +* 905.3 - SF7BW125 to SF10BW125 1002 +* 904.6 - SF8BW500 1003 + 869 869 ((( 870 -**Please see: **[[http:~~/~~/wiki.dragino.com/xwiki/bin/view/Main/Firmware%20Upgrade%20Instruction%20for%20STM32%20base%20products/#H3.3Troubleshooting>>url:http://wiki.dragino.com/xwiki/bin/view/Main/Firmware%20Upgrade%20Instruction%20for%20STM32%20base%20products/#H3.3Troubleshooting]] 1005 +Because the end node is now hopping in 72 frequency, it makes it difficult for the devices to Join the TTN network and uplink data. To solve this issue, you can access the device via the AT commands and run: 1006 + 1007 +* (% style="color:#037691" %)**AT+CHE=2** 1008 +* (% style="color:#037691" %)**ATZ** 871 871 ))) 872 872 873 -(% class="wikigeneratedid" %) 874 874 ((( 875 875 1013 + 1014 +to set the end node to work in 8 channel mode. The device will work in Channel 8-15 & 64-71 for OTAA, and channel 8-15 for Uplink. 876 876 ))) 877 877 1017 +((( 1018 + 1019 +))) 878 878 879 -== 6.2 AT Command input doesn't work == 1021 +((( 1022 +The **AU915** band is similar. Below are the AU915 Uplink Channels. 1023 +))) 880 880 1025 +[[image:image-20220606154825-4.png]] 881 881 1027 + 1028 +== 4.2 Can I calibrate LSE01 to different soil types? == 1029 + 1030 +LSE01 is calibrated for saline-alkali soil and loamy soil. If users want to use it for other soil, they can calibrate the value in the IoT platform base on the value measured by saline-alkali soil and loamy soil. The formula can be found at [[this link>>https://www.dragino.com/downloads/index.php?dir=LoRa_End_Node/LSE01/&file=Calibrate_to_other_Soil_20220605.pdf]]. 1031 + 1032 + 1033 += 5. Trouble Shooting = 1034 + 1035 +== 5.1 Why I can't join TTN in US915 / AU915 bands? == 1036 + 1037 +It is due to channel mapping. Please see the [[Eight Channel Mode>>doc:Main.End Device AT Commands and Downlink Command.WebHome||anchor="H7.19EightChannelMode"]] section above for details. 1038 + 1039 + 1040 +== 5.2 AT Command input doesn't work == 1041 + 882 882 ((( 883 883 In the case if user can see the console output but can't type input to the device. Please check if you already include the (% style="color:green" %)**ENTER**(%%) while sending out the command. Some serial tool doesn't send (% style="color:green" %)**ENTER**(%%) while press the send key, user need to add ENTER in their string. 1044 +))) 884 884 885 - 1046 + 1047 +== 5.3 Device rejoin in at the second uplink packet == 1048 + 1049 +(% style="color:#4f81bd" %)**Issue describe as below:** 1050 + 1051 +[[image:1654500909990-784.png]] 1052 + 1053 + 1054 +(% style="color:#4f81bd" %)**Cause for this issue:** 1055 + 1056 +((( 1057 +The fuse on LSE01 is not large enough, some of the soil probe require large current up to 5v 800mA, in a short pulse. When this happen, it cause the device reboot so user see rejoin. 886 886 ))) 887 887 888 888 889 - =7. OrderInfo=1061 +(% style="color:#4f81bd" %)**Solution: ** 890 890 1063 +All new shipped LSE01 after 2020-May-30 will have this to fix. For the customer who see this issue, please bypass the fuse as below: 891 891 892 - Part Number**:** (% style="color:#4f81bd"%)**NSDDS75**1065 +[[image:1654500929571-736.png||height="458" width="832"]] 893 893 894 894 1068 += 6. Order Info = 1069 + 1070 + 1071 +Part Number**:** (% style="color:#4f81bd" %)**LSE01-XX-YY** 1072 + 1073 + 1074 +(% style="color:#4f81bd" %)**XX**(%%)**:** The default frequency band 1075 + 1076 +* (% style="color:red" %)**AS923**(%%): LoRaWAN AS923 band 1077 +* (% style="color:red" %)**AU915**(%%): LoRaWAN AU915 band 1078 +* (% style="color:red" %)**EU433**(%%): LoRaWAN EU433 band 1079 +* (% style="color:red" %)**EU868**(%%): LoRaWAN EU868 band 1080 +* (% style="color:red" %)**KR920**(%%): LoRaWAN KR920 band 1081 +* (% style="color:red" %)**US915**(%%): LoRaWAN US915 band 1082 +* (% style="color:red" %)**IN865**(%%): LoRaWAN IN865 band 1083 +* (% style="color:red" %)**CN470**(%%): LoRaWAN CN470 band 1084 + 1085 +(% style="color:#4f81bd" %)**YY**(%%)**: **Battery Option 1086 + 1087 +* (% style="color:red" %)**4**(%%): 4000mAh battery 1088 +* (% style="color:red" %)**8**(%%): 8500mAh battery 1089 + 895 895 (% class="wikigeneratedid" %) 896 896 ((( 897 897 898 898 ))) 899 899 900 -= 8.1095 += 7. Packing Info = 901 901 902 902 ((( 903 903 904 904 905 905 (% style="color:#037691" %)**Package Includes**: 1101 +))) 906 906 907 -* NDDS75 NB-IoT Distance Detect Sensor Node x 1908 - *Externalantennax 11103 +* ((( 1104 +LSE01 LoRaWAN Soil Moisture & EC Sensor x 1 909 909 ))) 910 910 911 911 ((( ... ... @@ -912,24 +912,24 @@ 912 912 913 913 914 914 (% style="color:#037691" %)**Dimension and weight**: 1111 +))) 915 915 916 -* Device Size: 13.0 x 5 x 4.5 cm 917 -* Device Weight: 150g 918 -* Package Size / pcs : 15 x 12x 5.5 cm 919 -* Weight / pcs : 220g 1113 +* ((( 1114 +Device Size: cm 920 920 ))) 1116 +* ((( 1117 +Device Weight: g 1118 +))) 1119 +* ((( 1120 +Package Size / pcs : cm 1121 +))) 1122 +* ((( 1123 +Weight / pcs : g 921 921 922 -((( 923 923 924 - 925 - 926 - 927 927 ))) 928 928 929 -= 9.1128 += 8. Support = 930 930 931 - 932 932 * 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. 933 933 * 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:http://../../../../../../D:%5C%E5%B8%82%E5%9C%BA%E8%B5%84%E6%96%99%5C%E8%AF%B4%E6%98%8E%E4%B9%A6%5CLoRa%5CLT%E7%B3%BB%E5%88%97%5Csupport@dragino.com]] 934 - 935 -
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