Changes for page SN50v3-LB/LS -- LoRaWAN Sensor Node User Manual
Last modified by Bei Jinggeng on 2025/01/10 15:51
Change comment:
There is no comment for this version
Summary
-
Page properties (2 modified, 0 added, 0 removed)
-
Attachments (0 modified, 0 added, 1 removed)
Details
- Page properties
-
- Author
-
... ... @@ -1,1 +1,1 @@ 1 -XWiki. ting1 +XWiki.Saxer - Content
-
... ... @@ -19,7 +19,7 @@ 19 19 20 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. 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, and so on. 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, smartphone detection, building automation, and so on. 23 23 24 24 (% style="color:blue" %)**SN50V3-LB **(%%)has a powerful 48Mhz ARM microcontroller with 256KB flash and 64KB RAM. It has multiplex I/O pins to connect to different sensors. 25 25 ... ... @@ -27,6 +27,7 @@ 27 27 28 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. 29 29 30 + 30 30 == 1.2 Features == 31 31 32 32 ... ... @@ -580,16 +580,13 @@ 580 580 581 581 ==== 2.3.2.10 MOD~=10 (PWM input capture and output mode,Since firmware v1.2) ==== 582 582 583 -(% style="color:red" %)**Note: Firmware not release, contact Dragino for testing.** 584 - 585 585 In this mode, the uplink can perform PWM input capture, and the downlink can perform PWM output. 586 586 587 -[[It should be noted when using PWM mode.>> ||anchor="H2.3.3.12A0PWMMOD"]]586 +[[It should be noted when using PWM mode.>>http://8.211.40.43/xwiki/bin/view/Main/User%20Manual%20for%20LoRaWAN%20End%20Nodes/SN50v3-LB/#H2.3.3.12A0PWMMOD]] 588 588 589 589 590 590 ===== 2.3.2.10.a Uplink, PWM input capture ===== 591 591 592 - 593 593 [[image:image-20230817172209-2.png||height="439" width="683"]] 594 594 595 595 (% border="1" cellspacing="4" style="background-color:#f2f2f2; width:690px" %) ... ... @@ -613,33 +613,42 @@ 613 613 614 614 When the device detects the following PWM signal ,decoder will converts the pulse period and high-level duration to frequency and duty cycle. 615 615 616 - **Frequency:**614 +Frequency: 617 617 618 618 (% class="MsoNormal" %) 619 -(% 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);617 +(% 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 ,** 620 620 621 -( % class="MsoNormal" %)622 - (%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);619 +((( 620 + 623 623 622 +(% lang="EN-US" %)Frequency= 1000000/(%%)Pulse period(HZ); 623 +))) 624 624 625 625 (% class="MsoNormal" %) 626 - **Duty cycle:**626 +(% 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 ,** 627 627 628 -Duty cycle= Duration of high level/ Pulse period*100 ~(%). 628 +((( 629 + 629 629 630 -[[image:image-20230818092200-1.png||height="344" width="627"]] 631 +(% lang="EN-US" %)Frequency= 1000/(%%)Pulse period(HZ); 632 +))) 631 631 632 -===== 2.3.2.10.b Uplink, PWM output ===== 634 +(% class="MsoNormal" %) 635 +Duty cycle: 633 633 634 - [[image:image-20230817172209-2.png||height="439"width="683"]]637 +Duty cycle= Duration of high level/ Pulse period*100 ~(%). 635 635 636 636 637 637 641 +((( 642 + 643 +))) 638 638 639 639 646 +[[image:image-20230818092200-1.png||height="344" width="627"]] 640 640 641 -===== 2.3.2.10.c Downlink, PWM output ===== 642 642 649 +===== 2.3.2.10.b Downlink, PWM output ===== 643 643 644 644 [[image:image-20230817173800-3.png||height="412" width="685"]] 645 645 ... ... @@ -898,18 +898,8 @@ 898 898 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. 899 899 ))) 900 900 * ((( 901 -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. 902 -))) 903 -* ((( 904 -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. 908 +Since the device can only detect a pulse period of 50ms when [[AT+PWMSET=0>>http://8.211.40.43/xwiki/bin/view/Main/User%20Manual%20for%20LoRaWAN%20End%20Nodes/SN50v3-LB/#H3.3.8PWMsetting]] (counting in microseconds), it is necessary to change the value of PWMSET according to the frequency of input capture. 905 905 906 -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. 907 - 908 -a) If real-time control output is required, the SN50v3-LB is already operating in class C and an external power supply must be used. 909 - 910 -b) If the output duration is more than 30 seconds, better to use external power source. 911 - 912 - 913 913 914 914 ))) 915 915 ... ... @@ -1161,26 +1161,25 @@ 1161 1161 * Example 1: Downlink Payload: 0A01 **~-~-->** AT+MOD=1 1162 1162 * Example 2: Downlink Payload: 0A04 **~-~-->** AT+MOD=4 1163 1163 1164 - (% id="H3.3.8PWMsetting" %)1161 + 1165 1165 === 3.3.8 PWM setting === 1166 1166 1164 +Feature: Set the time acquisition unit for PWM input capture. 1167 1167 1168 -(% class="mark" %)Feature: Set the time acquisition unit for PWM input capture. 1169 - 1170 1170 (% style="color:blue" %)**AT Command: AT+PWMSET** 1171 1171 1172 1172 (% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 1173 -|=(% style="width: 155px;background-color:#D9E2F3;color:#0070C0" %)**Command Example**|=(% style="width: 223px;rgb(217, 226, 243);rgb(0, 112, 192);" %)**Function**|=(% style="width: 130px;rgb(217, 226, 243);rgb(0, 112, 192);" %)**Response**1174 -|(% style="width:154px" %)AT+PWMSET=?|(% style="width: 223px" %)0|(% style="width:130px" %)(((1169 +|=(% style="width: 155px;background-color:#D9E2F3;color:#0070C0" %)**Command Example**|=(% style="width: 197px;background-color:#D9E2F3;color:#0070C0" %)**Function**|=(% style="width: 158px;background-color:#D9E2F3;color:#0070C0" %)**Response** 1170 +|(% style="width:154px" %)AT+PWMSET=?|(% style="width:196px" %)0|(% style="width:157px" %)((( 1175 1175 0(default) 1176 1176 1177 1177 OK 1178 1178 ))) 1179 -|(% 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" %)(((1175 +|(% style="width:154px" %)AT+PWMSET=0|(% style="width:196px" %)The unit of PWM capture time is microsecond. The capture frequency range is between 20HZ and 100000HZ. |(% style="width:157px" %)((( 1180 1180 OK 1181 1181 1182 1182 ))) 1183 -|(% 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" %)OK1179 +|(% style="width:154px" %)AT+PWMSET=1|(% style="width:196px" %)The unit of PWM capture time is millisecond. The capture frequency range is between 5HZ and 250HZ. |(% style="width:157px" %)OK 1184 1184 1185 1185 (% style="color:blue" %)**Downlink Command: 0x0C** 1186 1186 ... ... @@ -1189,73 +1189,9 @@ 1189 1189 * Example 1: Downlink Payload: 0C00 **~-~-->** AT+PWMSET=0 1190 1190 * Example 2: Downlink Payload: 0C01 **~-~-->** AT+PWMSET=1 1191 1191 1188 += 4. Battery & Power Consumption = 1192 1192 1193 1193 1194 -(% class="mark" %)Feature: Set the time acquisition unit for PWM output. 1195 - 1196 -(% style="color:blue" %)**AT Command: AT+PWMOUT** 1197 - 1198 -(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 1199 -|=(% 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** 1200 -|(% style="width:183px" %)AT+PWMOUT=?|(% style="width:193px" %)0|(% style="width:137px" %)((( 1201 -0,0,0(default) 1202 - 1203 -OK 1204 -))) 1205 -|(% style="width:183px" %)AT+PWMOUT=0,0,0|(% style="width:193px" %)The default is PWM input detection|(% style="width:137px" %)((( 1206 -OK 1207 - 1208 -))) 1209 -|(% style="width:183px" %)AT+PWMOUT=5,1000,50|(% style="width:193px" %)((( 1210 -The PWM output time is 5ms, the output frequency is 1000HZ, and the output duty cycle is 50%. 1211 - 1212 - 1213 -)))|(% style="width:137px" %)((( 1214 -OK 1215 -))) 1216 - 1217 -(% border="1" cellspacing="4" style="background-color:#f2f2f2; width:510px" %) 1218 -|=(% 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** 1219 -|(% colspan="1" rowspan="3" style="width:155px" %)((( 1220 -AT+PWMOUT=a,b,c 1221 - 1222 - 1223 -)))|(% colspan="1" rowspan="3" style="width:112px" %)((( 1224 -Set PWM output time, output frequency and output duty cycle.((( 1225 - 1226 -))) 1227 - 1228 -((( 1229 - 1230 -))) 1231 -)))|(% style="width:242px" %)((( 1232 -a: Output time (unit: seconds) 1233 - 1234 -The value ranges from 0 to 65535. 1235 - 1236 -When a=65535, PWM will always output. 1237 -))) 1238 -|(% style="width:242px" %)((( 1239 -b: Output frequency (unit: HZ) 1240 -))) 1241 -|(% style="width:242px" %)((( 1242 -c: Output duty cycle (unit: %) 1243 - 1244 -The value ranges from 0 to 100. 1245 -))) 1246 - 1247 -(% style="color:blue" %)**Downlink Command: 0x0B01** 1248 - 1249 -Format: Command Code (0x0B01) followed by 6 bytes. 1250 - 1251 -Downlink payload:0B01 bb cc aa **~-~--> **AT+PWMOUT=a,b,c 1252 - 1253 -* Example 1: Downlink Payload: 0B01 03E8 0032 0005 **~-~-->** AT+PWMSET=5,1000,50 1254 -* Example 2: Downlink Payload: 0B01 07D0 003C 000A **~-~-->** AT+PWMSET=10,2000,60 1255 - 1256 -= 4. Battery & Power Cons = 1257 - 1258 - 1259 1259 SN50v3-LB use ER26500 + SPC1520 battery pack. See below link for detail information about the battery info and how to replace. 1260 1260 1261 1261 [[**Battery Info & Power Consumption Analyze**>>http://wiki.dragino.com/xwiki/bin/view/Main/How%20to%20calculate%20the%20battery%20life%20of%20Dragino%20sensors%3F/]] .
- image-20231213102404-1.jpeg
-
- Author
-
... ... @@ -1,1 +1,0 @@ 1 -XWiki.ting - Size
-
... ... @@ -1,1 +1,0 @@ 1 -4.2 MB - Content