Changes for page SN50v3-LB/LS -- LoRaWAN Sensor Node User Manual
Last modified by Bei Jinggeng on 2025/01/10 15:51
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... ... @@ -1,1 +1,1 @@ 1 -SN50v3-LB LoRaWAN Sensor Node User Manual 1 +SN50v3-LB/LS -- LoRaWAN Sensor Node User Manual - Author
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... ... @@ -1,1 +1,1 @@ 1 -XWiki. Saxer1 +XWiki.Xiaoling - Content
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... ... @@ -1,10 +1,15 @@ 1 + 2 + 1 1 (% style="text-align:center" %) 2 -[[image:image-202 30515135611-1.jpeg||height="589" width="589"]]4 +[[image:image-20240103095714-2.png]] 3 3 4 4 5 5 6 -**Table of Contents:** 7 7 9 + 10 + 11 +**Table of Contents:** 12 + 8 8 {{toc/}} 9 9 10 10 ... ... @@ -14,20 +14,19 @@ 14 14 15 15 = 1. Introduction = 16 16 17 -== 1.1 What is SN50v3-LB LoRaWAN Generic Node == 22 +== 1.1 What is SN50v3-LB/LS LoRaWAN Generic Node == 18 18 19 19 20 -(% style="color:blue" %)**SN50V3-LB **(%%)LoRaWAN Sensor Node is a Long Range LoRa Sensor Node. It is designed for outdoor use and powered by (% style="color:blue" %)** 8500mA Li/SOCl2 battery**(%%) for long term use.SN50V3-LB is designed to facilitate developers to quickly deploy industrial level LoRa and IoT solutions. It help users to turn the idea into a practical application and make the Internet of Things a reality. It is easy to program, create and connect your things everywhere. 25 +(% style="color:blue" %)**SN50V3-LB/LS **(%%)LoRaWAN Sensor Node is a Long Range LoRa Sensor Node. It is designed for outdoor use and powered by (% style="color:blue" %)** 8500mAh Li/SOCl2 battery**(%%) or (% style="color:blue" %)**solar powered + li-on battery**(%%) for long term use.SN50V3-LB/LS is designed to facilitate developers to quickly deploy industrial level LoRa and IoT solutions. It help users to turn the idea into a practical application and make the Internet of Things a reality. It is easy to program, create and connect your things everywhere. 21 21 22 -(% style="color:blue" %)**SN50V3-LB wireless part**(%%) is based on SX1262 allows the user to send data and reach extremely long ranges at low data-rates.It provides ultra-long range spread spectrum communication and high interference immunity whilst minimising current consumption.It targets professional wireless sensor network applications such as irrigation systems, smart metering, smart cities, smartphonedetection,building automation, andso on.27 +(% style="color:blue" %)**SN50V3-LB/LS wireless part**(%%) is based on SX1262 allows the user to send data and reach extremely long ranges at low data-rates.It provides ultra-long range spread spectrum communication and high interference immunity whilst minimising current consumption.It targets professional wireless sensor network applications such as irrigation systems, smart metering, smart cities, and so on. 23 23 24 -(% style="color:blue" %)** SN50V3-LB **(%%)has a powerful48Mhz ARM microcontroller with 256KB flash and 64KB RAM. It has multiplex I/O pins to connect to different sensors.29 +SN50V3-LB/LS has a powerful (% style="color:blue" %)**48Mhz ARM microcontroller with 256KB flash and 64KB RAM**(%%). It has (% style="color:blue" %)**multiplex I/O pins**(%%) to connect to different sensors. 25 25 26 -(% style="color:blue" %)** SN50V3-LB**(%%) has abuilt-in BLE module, user can configure the sensor remotely via Mobile Phone. It also support OTA upgrade via private LoRa protocol for easy maintaining.31 +SN50V3-LB/LS has a (% style="color:blue" %)**built-in BLE module**(%%), user can configure the sensor remotely via Mobile Phone. It also support (% style="color:blue" %)**OTA upgrade**(%%) via private LoRa protocol for easy maintaining. 27 27 28 -SN50V3-LB is the 3^^rd^^ generation of LSN50 series generic sensor node from Dragino. It is an (% style="color:blue" %)**open source project**(%%) and has a mature LoRaWAN stack and application software. User can use the pre-load software for their IoT projects or easily customize the software for different requirements. 33 +SN50V3-LB/LS is the 3^^rd^^ generation of LSN50 series generic sensor node from Dragino. It is an (% style="color:blue" %)**open source project**(%%) and has a mature LoRaWAN stack and application software. User can use the pre-load software for their IoT projects or easily customize the software for different requirements. 29 29 30 - 31 31 == 1.2 Features == 32 32 33 33 ... ... @@ -39,15 +39,15 @@ 39 39 * Support wireless OTA update firmware 40 40 * Uplink on periodically 41 41 * Downlink to change configure 42 -* 8500mAh Battery for long term use 46 +* 8500mAh Li/SOCl2 battery (SN50v3-LB) 47 +* Solar panel + 3000mAh Li-on battery (SN50v3-LS) 43 43 44 - 45 45 == 1.3 Specification == 46 46 47 47 48 48 (% style="color:#037691" %)**Common DC Characteristics:** 49 49 50 -* Supply Voltage: built in8500mAh Li-SOCI2battery , 2.5v ~~ 3.6v54 +* Supply Voltage: Built- in battery , 2.5v ~~ 3.6v 51 51 * Operating Temperature: -40 ~~ 85°C 52 52 53 53 (% style="color:#037691" %)**I/O Interface:** ... ... @@ -79,7 +79,6 @@ 79 79 * Sleep Mode: 5uA @ 3.3v 80 80 * LoRa Transmit Mode: 125mA @ 20dBm, 82mA @ 14dBm 81 81 82 - 83 83 == 1.4 Sleep mode and working mode == 84 84 85 85 ... ... @@ -91,7 +91,7 @@ 91 91 == 1.5 Button & LEDs == 92 92 93 93 94 -[[image:Main.User Manual for LoRaWAN End Nodes.D20-LBD22-LBD23-LB_LoRaWAN_Temperature_Sensor_User_Manual.WebHome@1675071855856-879.png]] 97 +[[image:Main.User Manual for LoRaWAN End Nodes.D20-LBD22-LBD23-LB_LoRaWAN_Temperature_Sensor_User_Manual.WebHome@1675071855856-879.png]][[image:image-20231231203148-2.png||height="456" width="316"]] 95 95 96 96 97 97 (% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) ... ... @@ -107,11 +107,10 @@ 107 107 ))) 108 108 |(% style="width:167px" %)Fast press ACT 5 times.|(% style="width:117px" %)Deactivate Device|(% style="width:225px" %)(% style="color:red" %)**Red led**(%%) will solid on for 5 seconds. Means device is in Deep Sleep Mode. 109 109 110 - 111 111 == 1.6 BLE connection == 112 112 113 113 114 -SN50v3-LB supports BLE remote configure. 116 +SN50v3-LB/LS supports BLE remote configure. 115 115 116 116 117 117 BLE can be used to configure the parameter of sensor or see the console output from sensor. BLE will be only activate on below case: ... ... @@ -131,18 +131,23 @@ 131 131 132 132 == 1.8 Mechanical == 133 133 136 +=== 1.8.1 for LB version === 134 134 135 -[[image:Main.User Manual for LoRaWAN End Nodes.D20-LBD22-LBD23-LB_LoRaWAN_Temperature_Sensor_User_Manual.WebHome@1675143884058-338.png]] 136 136 137 -[[image:Main.User Manual for LoRaWAN End Nodes.D20-LBD22-LBD23-LB_LoRaWAN_Temperature_Sensor_User_Manual.WebHome@1675143899218-599.png]] 139 +[[image:Main.User Manual for LoRaWAN End Nodes.D20-LBD22-LBD23-LB_LoRaWAN_Temperature_Sensor_User_Manual.WebHome@1675143884058-338.png]][[image:Main.User Manual for LoRaWAN End Nodes.D20-LBD22-LBD23-LB_LoRaWAN_Temperature_Sensor_User_Manual.WebHome@1675143899218-599.png]] 138 138 141 + 139 139 [[image:Main.User Manual for LoRaWAN End Nodes.D20-LBD22-LBD23-LB_LoRaWAN_Temperature_Sensor_User_Manual.WebHome@1675143909447-639.png]] 140 140 144 +=== 1.8.2 for LS version === 141 141 146 +[[image:image-20231231203439-3.png||height="385" width="886"]] 147 + 148 + 142 142 == 1.9 Hole Option == 143 143 144 144 145 -SN50v3-LB has different hole size options for different size sensor cable. The options provided are M12, M16 and M20. The definition is as below: 152 +SN50v3-LB/LS has different hole size options for different size sensor cable. The options provided are M12, M16 and M20. The definition is as below: 146 146 147 147 [[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-20220627104757-1.png?rev=1.1||alt="image-20220627104757-1.png"]] 148 148 ... ... @@ -149,12 +149,12 @@ 149 149 [[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/1656298089706-973.png?rev=1.1||alt="1656298089706-973.png"]] 150 150 151 151 152 -= 2. Configure SN50v3-LB to connect to LoRaWAN network = 159 += 2. Configure SN50v3-LB/LS to connect to LoRaWAN network = 153 153 154 154 == 2.1 How it works == 155 155 156 156 157 -The SN50v3-LB is configured as (% style="color:#037691" %)**LoRaWAN OTAA Class A**(%%) mode by default. It has OTAA keys to join LoRaWAN network. To connect a local LoRaWAN network, you need to input the OTAA keys in the LoRaWAN IoT server and press the button to activate the SN50v3-LB. It will automatically join the network via OTAA and start to send the sensor value. The default uplink interval is 20 minutes. 164 +The SN50v3-LB/LS is configured as (% style="color:#037691" %)**LoRaWAN OTAA Class A**(%%) mode by default. It has OTAA keys to join LoRaWAN network. To connect a local LoRaWAN network, you need to input the OTAA keys in the LoRaWAN IoT server and press the button to activate the SN50v3-LB/LS. It will automatically join the network via OTAA and start to send the sensor value. The default uplink interval is 20 minutes. 158 158 159 159 160 160 == 2.2 Quick guide to connect to LoRaWAN server (OTAA) == ... ... @@ -165,9 +165,9 @@ 165 165 The LPS8v2 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. 166 166 167 167 168 -(% style="color:blue" %)**Step 1:**(%%) Create a device in TTN with the OTAA keys from SN50v3-LB. 175 +(% style="color:blue" %)**Step 1:**(%%) Create a device in TTN with the OTAA keys from SN50v3-LB/LS. 169 169 170 -Each SN50v3-LB is shipped with a sticker with the default device EUI as below: 177 +Each SN50v3-LB/LS is shipped with a sticker with the default device EUI as below: 171 171 172 172 [[image:http://wiki.dragino.com/xwiki/bin/download/Main/User%20Manual%20for%20LoRaWAN%20End%20Nodes/S31-LB_S31B-LB/WebHome/image-20230426084152-1.png?width=502&height=233&rev=1.1||alt="图片-20230426084152-1.png" height="233" width="502"]] 173 173 ... ... @@ -196,10 +196,10 @@ 196 196 [[image:http://wiki.dragino.com/xwiki/bin/download/Main/User%20Manual%20for%20LoRaWAN%20End%20Nodes/LSN50v2-S31-S31B%20LoRaWAN%20Temperature%20%26%20Humidity%20Sensor%20User%20Manual/WebHome/image-20220611161308-6.png?width=744&height=485&rev=1.1||alt="图片-20220611161308-6.png"]] 197 197 198 198 199 -(% style="color:blue" %)**Step 2:**(%%) Activate SN50v3-LB 206 +(% style="color:blue" %)**Step 2:**(%%) Activate SN50v3-LB/LS 200 200 201 201 202 -Press the button for 5 seconds to activate the SN50v3-LB. 209 +Press the button for 5 seconds to activate the SN50v3-LB/LS. 203 203 204 204 (% style="color:green" %)**Green led**(%%) will fast blink 5 times, device will enter (% style="color:blue" %)**OTA mode**(%%) for 3 seconds. And then start to JOIN LoRaWAN network. (% style="color:green" %)**Green led**(%%) will solidly turn on for 5 seconds after joined in network. 205 205 ... ... @@ -211,7 +211,7 @@ 211 211 === 2.3.1 Device Status, FPORT~=5 === 212 212 213 213 214 -Users can use the downlink command(**0x26 01**) to ask SN50v3-LB to send device configure detail, include device configure status. SN50v3-LB will uplink a payload via FPort=5 to server. 221 +Users can use the downlink command(**0x26 01**) to ask SN50v3-LB/LS to send device configure detail, include device configure status. SN50v3-LB/LS will uplink a payload via FPort=5 to server. 215 215 216 216 The Payload format is as below. 217 217 ... ... @@ -224,39 +224,39 @@ 224 224 Example parse in TTNv3 225 225 226 226 227 -(% style="color:#037691" %)**Sensor Model**(%%): For SN50v3-LB, this value is 0x1C 234 +(% style="color:#037691" %)**Sensor Model**(%%): For SN50v3-LB/LS, this value is 0x1C 228 228 229 229 (% style="color:#037691" %)**Firmware Version**(%%): 0x0100, Means: v1.0.0 version 230 230 231 231 (% style="color:#037691" %)**Frequency Band**: 232 232 233 - *0x01: EU868240 +0x01: EU868 234 234 235 - *0x02: US915242 +0x02: US915 236 236 237 - *0x03: IN865244 +0x03: IN865 238 238 239 - *0x04: AU915246 +0x04: AU915 240 240 241 - *0x05: KZ865248 +0x05: KZ865 242 242 243 - *0x06: RU864250 +0x06: RU864 244 244 245 - *0x07: AS923252 +0x07: AS923 246 246 247 - *0x08: AS923-1254 +0x08: AS923-1 248 248 249 - *0x09: AS923-2256 +0x09: AS923-2 250 250 251 - *0x0a: AS923-3258 +0x0a: AS923-3 252 252 253 - *0x0b: CN470260 +0x0b: CN470 254 254 255 - *0x0c: EU433262 +0x0c: EU433 256 256 257 - *0x0d: KR920264 +0x0d: KR920 258 258 259 - *0x0e: MA869266 +0x0e: MA869 260 260 261 261 262 262 (% style="color:#037691" %)**Sub-Band**: ... ... @@ -280,7 +280,7 @@ 280 280 === 2.3.2 Working Modes & Sensor Data. Uplink via FPORT~=2 === 281 281 282 282 283 -SN50v3-LB has different working mode for the connections of different type of sensors. This section describes these modes. Use can use the AT Command (% style="color:blue" %)**AT+MOD**(%%) to set SN50v3-LB to different working modes. 290 +SN50v3-LB/LS has different working mode for the connections of different type of sensors. This section describes these modes. Use can use the AT Command (% style="color:blue" %)**AT+MOD**(%%) to set SN50v3-LB/LS to different working modes. 284 284 285 285 For example: 286 286 ... ... @@ -289,7 +289,7 @@ 289 289 290 290 (% style="color:red" %) **Important Notice:** 291 291 292 -~1. Some working modes has payload more than 12 bytes, The US915/AU915/AS923 frequency bands' definition has maximum 11 bytes in (% style="color:blue" %)**DR0**(%%). Server sides will see NULL payload while SN50v3-LB transmit in DR0 with 12 bytes payload. 299 +~1. Some working modes has payload more than 12 bytes, The US915/AU915/AS923 frequency bands' definition has maximum 11 bytes in (% style="color:blue" %)**DR0**(%%). Server sides will see NULL payload while SN50v3-LB/LS transmit in DR0 with 12 bytes payload. 293 293 294 294 2. All modes share the same Payload Explanation from HERE. 295 295 ... ... @@ -332,9 +332,8 @@ 332 332 )))|(% style="width:189px" %)((( 333 333 Digital in(PB15) & Digital Interrupt(PA8) 334 334 )))|(% style="width:208px" %)((( 335 -Distance measure by:1) LIDAR-Lite V3HP 336 -Or 337 -2) Ultrasonic Sensor 342 +Distance measure by: 1) LIDAR-Lite V3HP 343 +Or 2) Ultrasonic Sensor 338 338 )))|(% style="width:117px" %)Reserved 339 339 340 340 [[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/1656324539647-568.png?rev=1.1||alt="1656324539647-568.png"]] ... ... @@ -364,8 +364,7 @@ 364 364 ADC(PA4) 365 365 )))|(% style="width:323px" %)((( 366 366 Distance measure by:1)TF-Mini plus LiDAR 367 -Or 368 -2) TF-Luna LiDAR 373 +Or 2) TF-Luna LiDAR 369 369 )))|(% style="width:188px" %)Distance signal strength 370 370 371 371 [[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/1656376779088-686.png?rev=1.1||alt="1656376779088-686.png"]] ... ... @@ -472,7 +472,6 @@ 472 472 [[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-20220820120036-2.png?width=1003&height=469&rev=1.1||alt="image-20220820120036-2.png" height="469" width="1003"]] 473 473 474 474 475 - 476 476 ==== 2.3.2.6 MOD~=6 (Counting Mode) ==== 477 477 478 478 ... ... @@ -585,6 +585,105 @@ 585 585 When AA is 2, set the count of PA4 pin to BB Corresponding downlink:09 02 bb bb bb bb 586 586 587 587 592 +==== 2.3.2.10 MOD~=10 (PWM input capture and output mode,Since firmware v1.2) ==== 593 + 594 +(% style="color:red" %)**Note: Firmware not release, contact Dragino for testing.** 595 + 596 +In this mode, the uplink can perform PWM input capture, and the downlink can perform PWM output. 597 + 598 +[[It should be noted when using PWM mode.>>||anchor="H2.3.3.12A0PWMMOD"]] 599 + 600 + 601 +===== 2.3.2.10.a Uplink, PWM input capture ===== 602 + 603 + 604 +[[image:image-20230817172209-2.png||height="439" width="683"]] 605 + 606 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:515px" %) 607 +|(% style="background-color:#d9e2f3; color:#0070c0; width:50px" %)**Size(bytes)**|(% style="background-color:#d9e2f3; color:#0070c0; width:20px" %)**2**|(% style="background-color:#d9e2f3; color:#0070c0; width:100px" %)**2**|(% style="background-color:#d9e2f3; color:#0070c0; width:50px" %)**2**|(% style="background-color:#d9e2f3; color:#0070c0; width:135px" %)**1**|(% style="background-color:#d9e2f3; color:#0070c0; width:70px" %)**2**|(% style="background-color:#d9e2f3; color:#0070c0; width:90px" %)**2** 608 +|Value|Bat|(% style="width:191px" %)((( 609 +Temperature(DS18B20)(PC13) 610 +)))|(% style="width:78px" %)((( 611 +ADC(PA4) 612 +)))|(% style="width:135px" %)((( 613 +PWM_Setting 614 +&Digital Interrupt(PA8) 615 +)))|(% style="width:70px" %)((( 616 +Pulse period 617 +)))|(% style="width:89px" %)((( 618 +Duration of high level 619 +))) 620 + 621 +[[image:image-20230817170702-1.png||height="161" width="1044"]] 622 + 623 + 624 +When the device detects the following PWM signal ,decoder will converts the pulse period and high-level duration to frequency and duty cycle. 625 + 626 +**Frequency:** 627 + 628 +(% class="MsoNormal" %) 629 +(% lang="EN-US" %)If (% style="background-attachment:initial; background-clip:initial; background-image:initial; background-origin:initial; background-position:initial; background-repeat:initial; background-size:initial; color:blue; font-family:Arial,sans-serif" %)**AT+PWMSET**(%%)**=0, **(% lang="EN-US" %)Frequency= 1000000/(%%)Pulse period(HZ); 630 + 631 +(% class="MsoNormal" %) 632 +(% lang="EN-US" %)If (% style="background-attachment:initial; background-clip:initial; background-image:initial; background-origin:initial; background-position:initial; background-repeat:initial; background-size:initial; color:blue; font-family:Arial,sans-serif" %)**AT+PWMSET**(%%)**=1, **(% lang="EN-US" %)Frequency= 1000/(%%)Pulse period(HZ); 633 + 634 + 635 +(% class="MsoNormal" %) 636 +**Duty cycle:** 637 + 638 +Duty cycle= Duration of high level/ Pulse period*100 ~(%). 639 + 640 +[[image:image-20230818092200-1.png||height="344" width="627"]] 641 + 642 +===== 2.3.2.10.b Uplink, PWM output ===== 643 + 644 +[[image:image-20230817172209-2.png||height="439" width="683"]] 645 + 646 +(% style="background-attachment:initial; background-clip:initial; background-image:initial; background-origin:initial; background-position:initial; background-repeat:initial; background-size:initial; color:blue; font-family:Arial,sans-serif" %)**AT+PWMOUT=a,b,c** 647 + 648 +a is the time delay of the output, the unit is ms. 649 + 650 +b is the output frequency, the unit is HZ. 651 + 652 +c is the duty cycle of the output, the unit is %. 653 + 654 +(% style="background-attachment:initial; background-clip:initial; background-image:initial; background-origin:initial; background-position:initial; background-repeat:initial; background-size:initial; color:blue; font-family:Arial,sans-serif" %)**Downlink**(%%): (% style="color:#037691" %)**0B 01 bb cc aa ** 655 + 656 +aa is the time delay of the output, the unit is ms. 657 + 658 +bb is the output frequency, the unit is HZ. 659 + 660 +cc is the duty cycle of the output, the unit is %. 661 + 662 + 663 +For example, send a AT command: AT+PWMOUT=65535,1000,50 The PWM is always out, the frequency is 1000HZ, and the duty cycle is 50. 664 + 665 +The oscilloscope displays as follows: 666 + 667 +[[image:image-20231213102404-1.jpeg||height="780" width="932"]] 668 + 669 + 670 +===== 2.3.2.10.c Downlink, PWM output ===== 671 + 672 + 673 +[[image:image-20230817173800-3.png||height="412" width="685"]] 674 + 675 +Downlink: (% style="color:#037691" %)**0B xx xx xx yy zz zz** 676 + 677 + xx xx xx is the output frequency, the unit is HZ. 678 + 679 + yy is the duty cycle of the output, the unit is %. 680 + 681 + zz zz is the time delay of the output, the unit is ms. 682 + 683 + 684 +For example, send a downlink command: 0B 00 61 A8 32 13 88, the frequency is 25KHZ, the duty cycle is 50, and the output time is 5 seconds. 685 + 686 +The oscilloscope displays as follows: 687 + 688 +[[image:image-20230817173858-5.png||height="694" width="921"]] 689 + 690 + 588 588 === 2.3.3 Decode payload === 589 589 590 590 ... ... @@ -594,13 +594,13 @@ 594 594 595 595 The payload decoder function for TTN V3 are here: 596 596 597 -SN50v3-LB TTN V3 Payload Decoder: [[https:~~/~~/github.com/dragino/dragino-end-node-decoder>>url:https://github.com/dragino/dragino-end-node-decoder]] 700 +SN50v3-LB/LS TTN V3 Payload Decoder: [[https:~~/~~/github.com/dragino/dragino-end-node-decoder>>url:https://github.com/dragino/dragino-end-node-decoder]] 598 598 599 599 600 600 ==== 2.3.3.1 Battery Info ==== 601 601 602 602 603 -Check the battery voltage for SN50v3-LB. 706 +Check the battery voltage for SN50v3-LB/LS. 604 604 605 605 Ex1: 0x0B45 = 2885mV 606 606 ... ... @@ -658,10 +658,14 @@ 658 658 (% style="color:red" %)**Note: If the ADC type sensor needs to be powered by SN50_v3, it is recommended to use +5V to control its switch.Only sensors with low power consumption can be powered with VDD.** 659 659 660 660 764 +The position of PA5 on the hardware after **LSN50 v3.3** is changed to the position shown in the figure below, and the collected voltage becomes one-sixth of the original. 765 + 766 +[[image:image-20230811113449-1.png||height="370" width="608"]] 767 + 661 661 ==== 2.3.3.5 Digital Interrupt ==== 662 662 663 663 664 -Digital Interrupt refers to pin PA8, and there are different trigger methods. When there is a trigger, the SN50v3-LB will send a packet to the server. 771 +Digital Interrupt refers to pin PA8, and there are different trigger methods. When there is a trigger, the SN50v3-LB/LS will send a packet to the server. 665 665 666 666 (% style="color:blue" %)** Interrupt connection method:** 667 667 ... ... @@ -674,18 +674,18 @@ 674 674 675 675 [[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/1656379210849-860.png?rev=1.1||alt="1656379210849-860.png"]] 676 676 677 -When the two pieces are close to each other, the 2 wire output will be short or open (depending on the type), while if the two pieces are away from each other, the 2 wire output will be the opposite status. So we can use SN50v3-LB interrupt interface to detect the status for the door or window. 784 +When the two pieces are close to each other, the 2 wire output will be short or open (depending on the type), while if the two pieces are away from each other, the 2 wire output will be the opposite status. So we can use SN50v3-LB/LS interrupt interface to detect the status for the door or window. 678 678 679 679 680 680 (% style="color:blue" %)**Below is the installation example:** 681 681 682 -Fix one piece of the magnetic sensor to the door and connect the two pins to SN50v3-LB as follows: 789 +Fix one piece of the magnetic sensor to the door and connect the two pins to SN50v3-LB/LS as follows: 683 683 684 684 * ((( 685 -One pin to SN50v3-LB's PA8 pin 792 +One pin to SN50v3-LB/LS's PA8 pin 686 686 ))) 687 687 * ((( 688 -The other pin to SN50v3-LB's VDD pin 795 +The other pin to SN50v3-LB/LS's VDD pin 689 689 ))) 690 690 691 691 Install the other piece to the door. Find a place where the two pieces will be close to each other when the door is closed. For this particular magnetic sensor, when the door is closed, the output will be short, and PA8 will be at the VCC voltage. ... ... @@ -721,7 +721,7 @@ 721 721 722 722 We have made an example to show how to use the I2C interface to connect to the SHT20/ SHT31 Temperature and Humidity Sensor. 723 723 724 -(% style="color:red" %)**Notice: Different I2C sensors have different I2C commands set and initiate process, if user want to use other I2C sensors, User need to re-write the source code to support those sensors. SHT20/ SHT31 code in SN50v3-LB will be a good reference.** 831 +(% style="color:red" %)**Notice: Different I2C sensors have different I2C commands set and initiate process, if user want to use other I2C sensors, User need to re-write the source code to support those sensors. SHT20/ SHT31 code in SN50v3-LB/LS will be a good reference.** 725 725 726 726 727 727 Below is the connection to SHT20/ SHT31. The connection is as below: ... ... @@ -755,7 +755,7 @@ 755 755 756 756 This Fundamental Principles of this sensor can be found at this link: [[https:~~/~~/wiki.dfrobot.com/Weather_-_proof_Ultrasonic_Sensor_with_Separate_Probe_SKU~~_~~__SEN0208>>url:https://wiki.dfrobot.com/Weather_-_proof_Ultrasonic_Sensor_with_Separate_Probe_SKU___SEN0208]] 757 757 758 -The SN50v3-LB detects the pulse width of the sensor and converts it to mm output. The accuracy will be within 1 centimeter. The usable range (the distance between the ultrasonic probe and the measured object) is between 24cm and 600cm. 865 +The SN50v3-LB/LS detects the pulse width of the sensor and converts it to mm output. The accuracy will be within 1 centimeter. The usable range (the distance between the ultrasonic probe and the measured object) is between 24cm and 600cm. 759 759 760 760 The working principle of this sensor is similar to the (% style="color:blue" %)**HC-SR04**(%%) ultrasonic sensor. 761 761 ... ... @@ -764,7 +764,7 @@ 764 764 [[image:image-20230512173903-6.png||height="596" width="715"]] 765 765 766 766 767 -Connect to the SN50v3-LB and run (% style="color:blue" %)**AT+MOD=2**(%%) to switch to ultrasonic mode (ULT). 874 +Connect to the SN50v3-LB/LS and run (% style="color:blue" %)**AT+MOD=2**(%%) to switch to ultrasonic mode (ULT). 768 768 769 769 The ultrasonic sensor uses the 8^^th^^ and 9^^th^^ byte for the measurement value. 770 770 ... ... @@ -776,13 +776,13 @@ 776 776 ==== 2.3.3.9 Battery Output - BAT pin ==== 777 777 778 778 779 -The BAT pin of SN50v3-LB is connected to the Battery directly. If users want to use BAT pin to power an external sensor. User need to make sure the external sensor is of low power consumption. Because the BAT pin is always open. If the external sensor is of high power consumption. the battery of SN50v3-LB will run out very soon. 886 +The BAT pin of SN50v3-LB/LS is connected to the Battery directly. If users want to use BAT pin to power an external sensor. User need to make sure the external sensor is of low power consumption. Because the BAT pin is always open. If the external sensor is of high power consumption. the battery of SN50v3-LB/LS will run out very soon. 780 780 781 781 782 782 ==== 2.3.3.10 +5V Output ==== 783 783 784 784 785 -SN50v3-LB will enable +5V output before all sampling and disable the +5v after all sampling. 892 +SN50v3-LB/LS will enable +5V output before all sampling and disable the +5v after all sampling. 786 786 787 787 The 5V output time can be controlled by AT Command. 788 788 ... ... @@ -804,9 +804,39 @@ 804 804 [[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-20220628110012-12.png?rev=1.1||alt="image-20220628110012-12.png" height="361" width="953"]] 805 805 806 806 807 -==== 2.3.3.12 W orkingMOD ====914 +==== 2.3.3.12 PWM MOD ==== 808 808 809 809 917 +* ((( 918 +The maximum voltage that the SDA pin of SN50v3 can withstand is 3.6V, and it cannot exceed this voltage value, otherwise the chip may be burned. 919 +))) 920 +* ((( 921 +If the PWM pin connected to the SDA pin cannot maintain a high level when it is not working, you need to remove the resistor R2 or replace it with a resistor with a larger resistance, otherwise a sleep current of about 360uA will be generated. The position of the resistor is shown in the figure below: 922 +))) 923 + 924 + [[image:image-20230817183249-3.png||height="320" width="417"]] 925 + 926 +* ((( 927 +The signal captured by the input should preferably be processed by hardware filtering and then connected in. The software processing method is to capture four values, discard the first captured value, and then take the middle value of the second, third, and fourth captured values. 928 +))) 929 +* ((( 930 +Since the device can only detect a pulse period of 50ms when [[AT+PWMSET=0>>||anchor="H3.3.8PWMsetting"]] (counting in microseconds), it is necessary to change the value of PWMSET according to the frequency of input capture. 931 +))) 932 +* ((( 933 +PWM Input allows low power consumption. PWM Output to achieve real-time control, you need to go to class C. Power consumption will not be low. 934 + 935 +For PWM Output Feature, there are two consideration to see if the device can be powered by battery or have to be powered by external DC. 936 + 937 +a) If real-time control output is required, the SN50v3-LB/LS is already operating in class C and an external power supply must be used. 938 + 939 +b) If the output duration is more than 30 seconds, better to use external power source. 940 +))) 941 + 942 + 943 + 944 +==== 2.3.3.13 Working MOD ==== 945 + 946 + 810 810 The working MOD info is contained in the Digital in & Digital Interrupt byte (7^^th^^ Byte). 811 811 812 812 User can use the 3^^rd^^ ~~ 7^^th^^ bit of this byte to see the working mod: ... ... @@ -822,8 +822,8 @@ 822 822 * 6: MOD7 823 823 * 7: MOD8 824 824 * 8: MOD9 962 +* 9: MOD10 825 825 826 - 827 827 == 2.4 Payload Decoder file == 828 828 829 829 ... ... @@ -837,23 +837,22 @@ 837 837 == 2.5 Frequency Plans == 838 838 839 839 840 -The SN50v3-LB 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. 977 +The SN50v3-LB/LS 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. 841 841 842 842 [[http:~~/~~/wiki.dragino.com/xwiki/bin/view/Main/End%20Device%20Frequency%20Band/>>http://wiki.dragino.com/xwiki/bin/view/Main/End%20Device%20Frequency%20Band/]] 843 843 844 844 845 -= 3. Configure SN50v3-LB = 982 += 3. Configure SN50v3-LB/LS = 846 846 847 847 == 3.1 Configure Methods == 848 848 849 849 850 -SN50v3-LB supports below configure method: 987 +SN50v3-LB/LS supports below configure method: 851 851 852 852 * AT Command via Bluetooth Connection (**Recommended**): [[BLE Configure Instruction>>http://wiki.dragino.com/xwiki/bin/view/Main/BLE%20Bluetooth%20Remote%20Configure/]]. 853 853 * AT Command via UART Connection : See [[UART Connection>>http://wiki.dragino.com/xwiki/bin/view/Main/UART%20Access%20for%20LoRa%20ST%20v4%20base%20model/#H2.3UARTConnectionforSN50v3basemotherboard]]. 854 854 * LoRaWAN Downlink. Instruction for different platforms: See [[IoT LoRaWAN Server>>http://wiki.dragino.com/xwiki/bin/view/Main/]] section. 855 855 856 - 857 857 == 3.2 General Commands == 858 858 859 859 ... ... @@ -867,10 +867,10 @@ 867 867 [[http:~~/~~/wiki.dragino.com/xwiki/bin/view/Main/End%20Device%20AT%20Commands%20and%20Downlink%20Command/>>http://wiki.dragino.com/xwiki/bin/view/Main/End%20Device%20AT%20Commands%20and%20Downlink%20Command/]] 868 868 869 869 870 -== 3.3 Commands special design for SN50v3-LB == 1006 +== 3.3 Commands special design for SN50v3-LB/LS == 871 871 872 872 873 -These commands only valid for SN50v3-LB, as below: 1009 +These commands only valid for SN50v3-LB/LS, as below: 874 874 875 875 876 876 === 3.3.1 Set Transmit Interval Time === ... ... @@ -901,7 +901,6 @@ 901 901 * Example 1: Downlink Payload: 0100001E ~/~/ Set Transmit Interval (TDC) = 30 seconds 902 902 * Example 2: Downlink Payload: 0100003C ~/~/ Set Transmit Interval (TDC) = 60 seconds 903 903 904 - 905 905 === 3.3.2 Get Device Status === 906 906 907 907 ... ... @@ -950,7 +950,6 @@ 950 950 * Example 3: Downlink Payload: 06000102 **~-~-->** AT+INTMOD2=2 951 951 * Example 4: Downlink Payload: 06000201 **~-~-->** AT+INTMOD3=1 952 952 953 - 954 954 === 3.3.4 Set Power Output Duration === 955 955 956 956 ... ... @@ -983,7 +983,6 @@ 983 983 * Example 1: Downlink Payload: 070000 **~-~-->** AT+5VT=0 984 984 * Example 2: Downlink Payload: 0701F4 **~-~-->** AT+5VT=500 985 985 986 - 987 987 === 3.3.5 Set Weighing parameters === 988 988 989 989 ... ... @@ -1009,7 +1009,6 @@ 1009 1009 * Example 2: Downlink Payload: 08020FA3 **~-~-->** AT+WEIGAP=400.3 1010 1010 * Example 3: Downlink Payload: 08020FA0 **~-~-->** AT+WEIGAP=400.0 1011 1011 1012 - 1013 1013 === 3.3.6 Set Digital pulse count value === 1014 1014 1015 1015 ... ... @@ -1033,7 +1033,6 @@ 1033 1033 * Example 1: Downlink Payload: 090100000000 **~-~-->** AT+SETCNT=1,0 1034 1034 * Example 2: Downlink Payload: 0902000003E8 **~-~-->** AT+SETCNT=2,1000 1035 1035 1036 - 1037 1037 === 3.3.7 Set Workmode === 1038 1038 1039 1039 ... ... @@ -1058,12 +1058,103 @@ 1058 1058 * Example 1: Downlink Payload: 0A01 **~-~-->** AT+MOD=1 1059 1059 * Example 2: Downlink Payload: 0A04 **~-~-->** AT+MOD=4 1060 1060 1192 +(% id="H3.3.8PWMsetting" %) 1193 +=== 3.3.8 PWM setting === 1061 1061 1062 -= 4. Battery & Power Consumption = 1063 1063 1196 +(% class="mark" %)Feature: Set the time acquisition unit for PWM input capture. 1064 1064 1065 - SN50v3-LBuse ER26500 + SPC1520 batterypack. See belowlink fordetail information about thebatteryinfohow to replace.1198 +(% style="color:blue" %)**AT Command: AT+PWMSET** 1066 1066 1200 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 1201 +|=(% style="width: 155px;background-color:#D9E2F3;color:#0070C0" %)**Command Example**|=(% style="width: 223px; background-color: rgb(217, 226, 243); color: rgb(0, 112, 192);" %)**Function**|=(% style="width: 130px; background-color: rgb(217, 226, 243); color: rgb(0, 112, 192);" %)**Response** 1202 +|(% style="width:154px" %)AT+PWMSET=?|(% style="width:223px" %)0|(% style="width:130px" %)((( 1203 +0(default) 1204 + 1205 +OK 1206 +))) 1207 +|(% style="width:154px" %)AT+PWMSET=0|(% style="width:223px" %)The unit of PWM capture time is microsecond. The capture frequency range is between 20HZ and 100000HZ. |(% style="width:130px" %)((( 1208 +OK 1209 + 1210 +))) 1211 +|(% style="width:154px" %)AT+PWMSET=1|(% style="width:223px" %)The unit of PWM capture time is millisecond. The capture frequency range is between 5HZ and 250HZ. |(% style="width:130px" %)OK 1212 + 1213 +(% style="color:blue" %)**Downlink Command: 0x0C** 1214 + 1215 +Format: Command Code (0x0C) followed by 1 bytes. 1216 + 1217 +* Example 1: Downlink Payload: 0C00 **~-~-->** AT+PWMSET=0 1218 +* Example 2: Downlink Payload: 0C01 **~-~-->** AT+PWMSET=1 1219 + 1220 +(% class="mark" %)Feature: Set PWM output time, output frequency and output duty cycle. 1221 + 1222 +(% style="color:blue" %)**AT Command: AT+PWMOUT** 1223 + 1224 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 1225 +|=(% style="width: 183px; background-color: rgb(217, 226, 243); color: rgb(0, 112, 192);" %)**Command Example**|=(% style="width: 193px; background-color: rgb(217, 226, 243); color: rgb(0, 112, 192);" %)**Function**|=(% style="width: 137px; background-color: rgb(217, 226, 243); color: rgb(0, 112, 192);" %)**Response** 1226 +|(% style="width:183px" %)AT+PWMOUT=?|(% style="width:193px" %)0|(% style="width:137px" %)((( 1227 +0,0,0(default) 1228 + 1229 +OK 1230 +))) 1231 +|(% style="width:183px" %)AT+PWMOUT=0,0,0|(% style="width:193px" %)The default is PWM input detection|(% style="width:137px" %)((( 1232 +OK 1233 + 1234 +))) 1235 +|(% style="width:183px" %)AT+PWMOUT=5,1000,50|(% style="width:193px" %)((( 1236 +The PWM output time is 5ms, the output frequency is 1000HZ, and the output duty cycle is 50%. 1237 + 1238 + 1239 +)))|(% style="width:137px" %)((( 1240 +OK 1241 +))) 1242 + 1243 +(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 1244 +|=(% style="width: 155px; background-color: rgb(217, 226, 243); color: rgb(0, 112, 192);" %)**Command Example**|=(% style="width: 112px; background-color: rgb(217, 226, 243); color: rgb(0, 112, 192);" %)**Function**|=(% style="width: 242px; background-color: rgb(217, 226, 243); color: rgb(0, 112, 192);" %)**parameters** 1245 +|(% colspan="1" rowspan="3" style="width:155px" %)((( 1246 +AT+PWMOUT=a,b,c 1247 + 1248 + 1249 +)))|(% colspan="1" rowspan="3" style="width:112px" %)((( 1250 +Set PWM output time, output frequency and output duty cycle. 1251 + 1252 +((( 1253 + 1254 +))) 1255 + 1256 +((( 1257 + 1258 +))) 1259 +)))|(% style="width:242px" %)((( 1260 +a: Output time (unit: seconds) 1261 + 1262 +The value ranges from 0 to 65535. 1263 + 1264 +When a=65535, PWM will always output. 1265 +))) 1266 +|(% style="width:242px" %)((( 1267 +b: Output frequency (unit: HZ) 1268 +))) 1269 +|(% style="width:242px" %)((( 1270 +c: Output duty cycle (unit: %) 1271 + 1272 +The value ranges from 0 to 100. 1273 +))) 1274 + 1275 +(% style="color:blue" %)**Downlink Command: 0x0B01** 1276 + 1277 +Format: Command Code (0x0B01) followed by 6 bytes. 1278 + 1279 +Downlink payload:0B01 bb cc aa **~-~--> **AT+PWMOUT=a,b,c 1280 + 1281 +* Example 1: Downlink Payload: 0B01 03E8 0032 0005 **~-~-->** AT+PWMSET=5,1000,50 1282 +* Example 2: Downlink Payload: 0B01 07D0 003C 000A **~-~-->** AT+PWMSET=10,2000,60 1283 + 1284 += 4. Battery & Power Cons = 1285 + 1286 + 1287 +SN50v3-LB use ER26500 + SPC1520 battery pack and SN50v3-LS use 3000mAh Recharable Battery with Solar Panel. See below link for detail information about the battery info and how to replace. 1288 + 1067 1067 [[**Battery Info & Power Consumption Analyze**>>http://wiki.dragino.com/xwiki/bin/view/Main/How%20to%20calculate%20the%20battery%20life%20of%20Dragino%20sensors%3F/]] . 1068 1068 1069 1069 ... ... @@ -1071,7 +1071,7 @@ 1071 1071 1072 1072 1073 1073 (% class="wikigeneratedid" %) 1074 -**User can change firmware SN50v3-LB to:** 1296 +**User can change firmware SN50v3-LB/LS to:** 1075 1075 1076 1076 * Change Frequency band/ region. 1077 1077 * Update with new features. ... ... @@ -1081,23 +1081,37 @@ 1081 1081 1082 1082 **Methods to Update Firmware:** 1083 1083 1084 -* (Recommanded way) OTA firmware update via wireless: 1085 -* Update through UART TTL interface .**[[Instruction>>url:http://wiki.dragino.com/xwiki/bin/view/Main/UART%20Access%20for%20LoRa%20ST%20v4%20base%20model/#H1.LoRaSTv4baseHardware]]**.1306 +* (Recommanded way) OTA firmware update via wireless: **[[http:~~/~~/wiki.dragino.com/xwiki/bin/view/Main/Firmware%20OTA%20Update%20for%20Sensors/>>url:http://wiki.dragino.com/xwiki/bin/view/Main/Firmware%20OTA%20Update%20for%20Sensors/]]** 1307 +* Update through UART TTL interface: **[[Instruction>>url:http://wiki.dragino.com/xwiki/bin/view/Main/UART%20Access%20for%20LoRa%20ST%20v4%20base%20model/#H1.LoRaSTv4baseHardware]]**. 1086 1086 1087 - 1088 1088 = 6. FAQ = 1089 1089 1090 -== 6.1 Where can i find source code of SN50v3-LB? == 1311 +== 6.1 Where can i find source code of SN50v3-LB/LS? == 1091 1091 1092 1092 1093 1093 * **[[Hardware Source Files>>https://github.com/dragino/Lora/tree/master/LSN50/v3.0]].** 1094 1094 * **[[Software Source Code & Compile instruction>>https://github.com/dragino/SN50v3]].** 1095 1095 1317 +== 6.2 How to generate PWM Output in SN50v3-LB/LS? == 1096 1096 1319 + 1320 +See this document: **[[Generate PWM Output on SN50v3>>https://www.dropbox.com/scl/fi/r3trcet2knujg40w0mgyn/Generate-PWM-Output-on-SN50v3.pdf?rlkey=rxsgmrhhrv62iiiwjq9sv10bn&dl=0]]**. 1321 + 1322 + 1323 +== 6.3 How to put several sensors to a SN50v3-LB/LS? == 1324 + 1325 + 1326 +When we want to put several sensors to A SN50v3-LB/LS, the waterproof at the grand connector will become an issue. User can try to exchange the grand connector to below type. 1327 + 1328 +[[Reference Supplier>>https://www.yscableglands.com/cable-glands/nylon-cable-glands/cable-gland-rubber-seal.html]]. 1329 + 1330 +[[image:image-20230810121434-1.png||height="242" width="656"]] 1331 + 1332 + 1097 1097 = 7. Order Info = 1098 1098 1099 1099 1100 -Part Number: (% style="color:blue" %)**SN50v3-LB-XX-YY** 1336 +Part Number: (% style="color:blue" %)**SN50v3-LB-XX-YY**(%%) or (% style="color:blue" %)**SN50v3-LS-XX-YY** 1101 1101 1102 1102 (% style="color:red" %)**XX**(%%): The default frequency band 1103 1103 ... ... @@ -1117,13 +1117,12 @@ 1117 1117 * (% style="color:red" %)**20**(%%): With M20 waterproof cable hole 1118 1118 * (% style="color:red" %)**NH**(%%): No Hole 1119 1119 1120 - 1121 1121 = 8. Packing Info = 1122 1122 1123 1123 1124 1124 (% style="color:#037691" %)**Package Includes**: 1125 1125 1126 -* SN50v3-LB LoRaWAN Generic Node 1361 +* SN50v3-LB or SN50v3-LS LoRaWAN Generic Node 1127 1127 1128 1128 (% style="color:#037691" %)**Dimension and weight**: 1129 1129 ... ... @@ -1132,7 +1132,6 @@ 1132 1132 * Package Size / pcs : cm 1133 1133 * Weight / pcs : g 1134 1134 1135 - 1136 1136 = 9. Support = 1137 1137 1138 1138
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