Changes for page WSC1-L-Dragino LoRaWAN Weather Station User Manual
Last modified by Xiaoling on 2025/05/07 14:00
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... ... @@ -3,9 +3,8 @@ 3 3 4 4 5 5 6 - **Tableofntents:**6 +[[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image001.png]] 7 7 8 -{{toc/}} 9 9 10 10 11 11 ... ... @@ -20,47 +20,30 @@ 20 20 == 1.1 Overview == 21 21 22 22 23 -((( 24 -Dragino LoRaWAN weather station series products are designed for measuring atmospheric conditions to provide information for weather forecasts and to study the (% style="color:#4472c4" %)**weather and climate**(%%). They consist of a (% style="color:#4472c4" %)**main process device (WSC1-L) and various sensors**. 25 -))) 22 +Dragino LoRaWAN weather station series products are designed for measuring atmospheric conditions to provide information for weather forecasts and to study the weather and climate. They consist of a main process device (WSC1-L) and various sensors. 26 26 27 -((( 28 - 29 -))) 30 30 31 -((( 32 -The sensors include various type such as: (% style="color:#4472c4" %)**Rain Gauge**, **Temperature/Humidity/Pressure sensor**, **Wind Speed/direction sensor**, **Illumination sensor**, **CO2 sensor**, **Rain/Snow sensor**,** PM2.5/10 sensor**, **PAR(Photosynthetically Available Radiation) sensor, Total Solar Radiation sensor**(%%) and so on. 33 -))) 25 +The sensors include various type such as: Rain Gauge, Temperature/Humidity/Pressure sensor, Wind Speed/direction sensor, Illumination sensor, CO2 sensor, Rain/Snow sensor, PM2.5/10 sensor, PAR(Photosynthetically Available Radiation) sensor, Total Solar Radiation sensor and so on. 34 34 35 -((( 36 - 37 -))) 38 38 39 -((( 40 -Main process device WSC1-L is an outdoor LoRaWAN RS485 end node. It is powered by external (% style="color:#4472c4" %)**12v solar power**(%%) and have a (% style="color:#4472c4" %)**built-in li-on backup battery**(%%). WSC1-L reads value from various sensors and upload these sensor data to IoT server via LoRaWAN wireless protocol. 41 -))) 28 +Main process device WSC1-L is an outdoor LoRaWAN RS485 end node. It is powered by external 12v solar power and have a built-in li-on backup battery. WSC1-L reads value from various sensors and upload these sensor data to IoT server via LoRaWAN wireless protocol. 42 42 43 -((( 44 - 45 -))) 46 46 47 -((( 48 -WSC1-L is full compatible with(% style="color:#4472c4" %)** LoRaWAN Class C protocol**(%%), it can work with standard LoRaWAN gateway. 49 -))) 31 +WSC1-L is full compatible with LoRaWAN Class C protocol, it can work with standard LoRaWAN gateway. 50 50 51 51 52 52 35 + 53 53 = 2. How to use = 54 54 55 55 == 2.1 Installation == 56 56 57 -Below is an installation example for the weather station. Field installation example can be found at [[Appendix I: Field Installation Photo.>> ||anchor="H11.AppendixI:FieldInstallationPhoto"]]40 +Below is an installation example for the weather station. Field installation example can be found at [[Appendix I: Field Installation Photo.>>path:#Installation_Photo]] 58 58 59 -[[image: 1656041948552-849.png]]42 +[[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image002.png]] 60 60 44 +**Wiring:** 61 61 62 -(% style="color:blue" %)** Wiring:** 63 - 64 64 ~1. WSC1-L and sensors all powered by solar power via MPPT 65 65 66 66 2. WSC1-L and sensors connect to each other via RS485/Modbus. ... ... @@ -70,21 +70,20 @@ 70 70 71 71 WSC1-L is shipped with a RS485 converter board, for the easy connection to different sensors and WSC1-L. Below is a connection photo: 72 72 73 -[[image: 1656042136605-251.png]]55 +[[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image003.png]] 74 74 75 75 76 -(% style="color:red" %) ** Notice 1:** 77 77 59 + 60 +Notice 1: 61 + 78 78 * All weather sensors and WSC1-L are powered by MPPT solar recharge controller. MPPT is connected to solar panel and storage battery. 79 79 * WSC1-L has an extra 1000mAh back up battery. So it can work even solar panel and storage battery Fails. 80 80 * Weather sensors won’t work if solar panel and storage battery fails. 81 81 82 82 67 +Notice 2: 83 83 84 - 85 - 86 -(% style="color:red" %)** Notice 2:** 87 - 88 88 Due to shipment and importation limitation, user is better to purchase below parts locally: 89 89 90 90 * Solar Panel ... ... @@ -93,6 +93,10 @@ 93 93 * Mounting Kit includes pole and mast assembly. Each weather sensor has it’s own mounting assembly, user can check the sensor section in this manual. 94 94 * Cabinet. 95 95 77 + 78 + 79 + 80 + 96 96 == 2.2 How it works? == 97 97 98 98 Each WSC1-L is shipped with a worldwide unique set of OTAA keys. To use WSC1-L in a LoRaWAN network, user needs to input the OTAA keys in LoRaWAN network server. After finish installation as above. Create WSC1-L in your LoRaWAN server and Power on WSC1-L , it can join the LoRaWAN network and start to transmit sensor data. The default period for each uplink is 20 minutes. ... ... @@ -100,10 +100,10 @@ 100 100 101 101 Open WSC1-L and put the yellow jumper as below position to power on WSC1-L. 102 102 103 -[[image: 1656042192857-709.png]]88 +[[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image004.png]] 104 104 105 105 106 - **(% style="color:red" %)Notice:**91 +Notice: 107 107 108 108 1. WSC1-L will auto scan available weather sensors when power on or reboot. 109 109 1. User can send a downlink command( 增加下发命令的连接) to WSC1-L to do a re-scan on the available sensors. ... ... @@ -111,7 +111,6 @@ 111 111 112 112 113 113 114 - 115 115 == 2.3 Example to use for LoRaWAN network == 116 116 117 117 This section shows an example for how to join the TTN V3 LoRaWAN IoT server. Usages with other LoRaWAN IoT servers are of similar procedure. ... ... @@ -124,7 +124,7 @@ 124 124 Assume the DLOS8 is already set to connect to [[TTN V3 network >>url:https://eu1.cloud.thethings.network/]]. We need to add the WSC1-L device in TTN V3: 125 125 126 126 127 -(% style="color:blue" %) **Step 1**(%%): Create a device in TTN V3 with the OTAA keys from WSC1-L.111 +**(% style="color:blue" %)Step 1**(%%): Create a device in TTN V3 with the OTAA keys from WSC1-L. 128 128 129 129 Each WSC1-L is shipped with a sticker with the default device EUI as below: 130 130 ... ... @@ -159,7 +159,7 @@ 159 159 160 160 161 161 162 -(% style="color:blue" %) **Step 2**(%%): Power on WSC1-L, it will start to join TTN server. After join success, it will start to upload sensor data to TTN V3 and user can see in the panel.146 +**(% style="color:blue" %)Step 2**(%%): Power on WSC1-L, it will start to join TTN server. After join success, it will start to upload sensor data to TTN V3 and user can see in the panel. 163 163 164 164 165 165 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image011.png]] ... ... @@ -178,9 +178,8 @@ 178 178 179 179 180 180 181 -=== 2.4.1 Uplink FPORT === 182 182 183 -5, Device Status === 166 +=== 2.4.1 Uplink FPORT=5, Device Status === 184 184 185 185 Uplink the device configures with FPORT=5. Once WSC1-L Joined the network, it will uplink this message to the server. After first uplink, WSC1-L will uplink Device Status every 12 hours 186 186 ... ... @@ -188,27 +188,25 @@ 188 188 User can also use downlink command(0x2301) to ask WSC1-L to resend this uplink 189 189 190 190 |**Size (bytes)**|**1**|**2**|**1**|**1**|**2**|**3** 191 -|**Value**|[[Sensor Model>> ||anchor="HSensorModel:"]]|[[Firmware Version>>||anchor="HFirmwareVersion:"]]|[[Frequency Band>>||anchor="HFrequencyBand:"]]|[[Sub-band>>||anchor="HSub-Band:"]]|[[BAT>>||anchor="HBAT:"]]|[[Weather Sensor Types>>||anchor="HWeatherSensorTypes:"]]174 +|**Value**|[[Sensor Model>>path:#Sensor_model]]|[[Firmware Version>>path:#Firmware_version]]|[[Frequency Band>>path:#Fre_Band]]|[[Sub-band>>path:#Sub_band]]|[[BAT>>path:#Battery]]|[[Weather Sensor Types>>path:#Sensor_types]] 192 192 176 + 193 193 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image011.png]] 194 194 195 195 196 -Example Payload (FPort=5): [[image:image-20220624101005-1.png]]180 +Example Payload (FPort=5): 197 197 182 +0D 01 00 01 00 0B D6 10 00 FE 198 198 199 199 200 - ==== (% style="color:#037691" %)**Sensor Model:**(%%)====185 +**Sensor Model**: For WSC1-L, this value is 0x0D. 201 201 202 -For WSC1-L, this value is 0x0D. 203 203 188 +**Firmware Version**: 0x0100, Means: v1.0.0 version. 204 204 205 -==== (% style="color:#037691" %)**Firmware Version:**(%%) ==== 206 206 207 - 0x0100, Means:v1.0.0 version.191 +**Frequency Band**: 208 208 209 - 210 -==== (% style="color:#037691" %)**Frequency Band:**(%%) ==== 211 - 212 212 *0x01: EU868 213 213 214 214 *0x02: US915 ... ... @@ -230,19 +230,15 @@ 230 230 *0x0a: AS923-3 231 231 232 232 233 - ==== (% style="color:#037691" %)**Sub-Band:**(%%)====214 +**Sub-Band**: value 0x00 ~~ 0x08(only for CN470, AU915,US915. Others are0x00) 234 234 235 -value 0x00 ~~ 0x08(only for CN470, AU915,US915. Others are0x00) 236 236 217 +**BAT**: shows the battery voltage for WSC1-L MCU. 237 237 238 -==== (% style="color:#037691" %)**BAT:**(%%) ==== 239 - 240 -shows the battery voltage for WSC1-L MCU. 241 - 242 242 Ex1: 0x0BD6/1000 = 3.03 V 243 243 244 244 245 - ==== (% style="color:#037691" %)**Weather Sensor Types:**(%%) ====222 +**Weather Sensor Types:** 246 246 247 247 |Byte3|Byte2|Byte1 248 248 ... ... @@ -275,7 +275,7 @@ 275 275 276 276 User can also use downlink command(0x26 01) to ask WSC1-L to resend this uplink : 277 277 278 - (% style="color:#037691" %)**Downlink:0x26 01**255 +**Downlink:0x26 01** 279 279 280 280 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image012.png||alt="1646898147(1)"]] 281 281 ... ... @@ -282,12 +282,12 @@ 282 282 283 283 284 284 285 -=== 2.4.2 Uplink FPORT === 262 +1. 263 +11. 264 +111. Uplink FPORT=2, Real time sensor value 286 286 287 - 2,Real time sensorvalue===266 +WSC1-L will send this uplink after Device Config uplink once join LoRaWAN network successfully. And it will periodically send this uplink. Default interval is 20 minutes and [[can be changed>>path:#Uplink_Interval]]. 288 288 289 -WSC1-L will send this uplink after Device Config uplink once join LoRaWAN network successfully. And it will periodically send this uplink. Default interval is 20 minutes and [[can be changed>>||anchor="H"]]. 290 - 291 291 Uplink uses FPORT=2 and every 20 minutes send one uplink by default. 292 292 293 293 ... ... @@ -295,14 +295,16 @@ 295 295 296 296 |Sensor Segment 1|Sensor Segment 2|……|Sensor Segment n 297 297 298 -(% style="color:#4472c4" %)** Uplink Payload**: 299 299 276 +**Uplink Payload**: 277 + 300 300 |Type Code|Length (Bytes)|Measured Value 301 301 302 -(% style="color:#4472c4" %)** Sensor Segment Define**: 303 303 281 +**Sensor Segment Define**: 304 304 305 305 284 + 306 306 Sensor Type Table: 307 307 308 308 |**Sensor Type**|**Type Code**|**Range**|**Length ( Bytes)**|**Example** ... ... @@ -388,6 +388,7 @@ 388 388 (0x4EFE: No Sensor,0x4EFF: Value Error) 389 389 ))) 390 390 370 + 391 391 Below is an example payload: 392 392 393 393 01 03 00 14 02 02 03 02 C9 03 03 02 11 90 04 02 00 0A 05 02 02 1C 06 02 00 FA 07 02 02 62 08 02 27 63 09 02 00 00 0A 02 00 23 0B 02 00 2D 0C 02 00 B3 0D 02 00 73 ... ... @@ -409,7 +409,9 @@ 409 409 410 410 411 411 412 -=== 2.4.3 Decoder in TTN V3 === 392 +1. 393 +11. 394 +111. Decoder in TTN V3 413 413 414 414 In LoRaWAN platform, user only see HEX payload by default, user needs to use payload formatters to decode the payload to see human-readable value. 415 415 ... ... @@ -424,14 +424,15 @@ 424 424 425 425 426 426 427 -== 2.5 Show data on Application Server == 409 +1. 410 +11. Show data on Application Server 428 428 429 429 Application platform provides a human friendly interface to show the sensor data, once we have sensor data in TTN V3, we can use Datacake to connect to TTN V3 and see the data in Datacake. Below are the steps: 430 430 431 431 432 - (% style="color:blue" %)**Step 1**(%%): Be sure that your device is programmed and properly connected to the LoRaWAN network.415 +**Step 1**: Be sure that your device is programmed and properly connected to the LoRaWAN network. 433 433 434 - (% style="color:blue" %)**Step 2**(%%): Configure your Application to forward data to Datacake you will need to add integration. Go to TTN V3 Console ~-~-> Applications ~-~-> Integrations ~-~-> Add Integrations.417 +**Step 2**: Configure your Application to forward data to Datacake you will need to add integration. Go to TTN V3 Console ~-~-> Applications ~-~-> Integrations ~-~-> Add Integrations. 435 435 436 436 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image014.png]] 437 437 ... ... @@ -449,13 +449,13 @@ 449 449 450 450 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image017.png]] 451 451 435 +* 452 452 437 +1. Configure WSC1-L via AT Command or LoRaWAN Downlink 453 453 454 -= 3. Configure WSC1-L via AT Command or LoRaWAN Downlink = 455 - 456 456 Use can configure WSC1-L via AT Command or LoRaWAN Downlink. 457 457 458 -* AT Command Connection: See [[FAQ>> ||anchor="H"]].441 +* AT Command Connection: See [[FAQ>>path:#AT_COMMAND]]. 459 459 * LoRaWAN Downlink instruction for different platforms: 460 460 461 461 [[http:~~/~~/wiki.dragino.com/index.php?title=Main_Page#Use_Note_for_Server>>url:http://wiki.dragino.com/index.php?title=Main_Page#Use_Note_for_Server]] ... ... @@ -463,7 +463,7 @@ 463 463 464 464 There are two kinds of commands to configure WSC1-L, they are: 465 465 466 -* (% style="color:#4472c4" %)**General Commands**.449 +* **General Commands**. 467 467 468 468 These commands are to configure: 469 469 ... ... @@ -470,23 +470,24 @@ 470 470 * General system settings like: uplink interval. 471 471 * LoRaWAN protocol & radio related command. 472 472 473 -They are same for all Dragino Device which support DLWS-005 LoRaWAN Stack( (% style="color:red" %)Note~*~*)(%%). These commands can be found on the wiki:456 +They are same for all Dragino Device which support DLWS-005 LoRaWAN Stack(Note~*~*). These commands can be found on the wiki: 474 474 475 475 [[http:~~/~~/wiki.dragino.com/index.php?title=End_Device_Downlink_Command>>url:http://wiki.dragino.com/index.php?title=End_Device_Downlink_Command]] 476 476 477 - (% style="color:red" %)Note~*~*: Please check early user manual if you don’t have v1.8.0 firmware.460 +Note~*~*: Please check early user manual if you don’t have v1.8.0 firmware. 478 478 479 479 480 -* (% style="color:#4472c4" %)**Commands special design for WSC1-L**463 +* **Commands special design for WSC1-L** 481 481 482 482 These commands only valid for WSC1-L, as below: 483 483 484 484 485 -== 3.1 Set Transmit Interval Time == 468 +1. 469 +11. Set Transmit Interval Time 486 486 487 487 Feature: Change LoRaWAN End Node Transmit Interval. 488 488 489 - (% style="color:#037691" %)**AT Command: AT+TDC**473 +**AT Command: AT+TDC** 490 490 491 491 |**Command Example**|**Function**|**Response** 492 492 |AT+TDC?|Show current transmit Interval|((( ... ... @@ -502,8 +502,9 @@ 502 502 Set transmit interval to 60000ms = 60 seconds 503 503 ))) 504 504 505 -(% style="color:#037691" %)**Downlink Command: 0x01** 506 506 490 +**Downlink Command: 0x01** 491 + 507 507 Format: Command Code (0x01) followed by 3 bytes time value. 508 508 509 509 If the downlink payload=0100003C, it means set the END Node’s Transmit Interval to 0x00003C=60(S), while type code is 01. ... ... @@ -511,27 +511,35 @@ 511 511 * Example 1: Downlink Payload: 0100001E ~/~/ Set Transmit Interval (TDC) = 30 seconds 512 512 * Example 2: Downlink Payload: 0100003C ~/~/ Set Transmit Interval (TDC) = 60 seconds 513 513 514 -== 3.2 Set Emergency Mode == 515 515 500 + 501 + 502 +1. 503 +11. Set Emergency Mode 504 + 516 516 Feature: In emergency mode, WSC1-L will uplink data every 1 minute. 517 517 518 518 519 - (% style="color:#037691" %)**AT Command:**508 +**AT Command:** 520 520 521 521 |**Command Example**|**Function**|**Response** 522 522 |AT+ALARMMOD=1|Enter emergency mode. Uplink every 1 minute|OK 523 523 |AT+ALARMMOD=0|Exit emergency mode. Uplink base on TDC time|OK 524 524 525 -(% style="color:#037691" %)**Downlink Command:** 526 526 515 +**Downlink Command:** 516 + 527 527 * 0xE101 Same as: AT+ALARMMOD=1 528 528 * 0xE100 Same as: AT+ALARMMOD=0 529 529 530 -== 3.3 Add or Delete RS485 Sensor == 531 531 521 + 522 +1. 523 +11. Add or Delete RS485 Sensor 524 + 532 532 Feature: User can add or delete 3^^rd^^ party sensor as long they are RS485/Modbus interface,baud rate support 9600.Maximum can add 4 sensors. 533 533 534 - (% style="color:#037691" %)**AT Command: **527 +**AT Command: ** 535 535 536 536 AT+DYSENSOR=Type_Code, Query_Length, Query_Command , Read_Length , Valid_Data ,has_CRC,timeout 537 537 ... ... @@ -543,6 +543,8 @@ 543 543 * has_CRC: RS485 Response crc check (0: no verification required 1: verification required). If CRC=1 and CRC error, valid data will be set to 0. 544 544 * timeout: RS485 receive timeout (uint:ms). Device will close receive window after timeout 545 545 539 + 540 + 546 546 Example: 547 547 548 548 User need to change external sensor use the type code as address code. ... ... @@ -553,6 +553,7 @@ 553 553 |0xA1|0x03|0x00|0x00|0x00|0x01|0x9C|0xAA 554 554 | | | | | | | | 555 555 551 + 556 556 The response frame of the sensor is as follows: 557 557 558 558 |Address Code|Function Code|(% colspan="2" %)Data Length|(% colspan="2" %)Data|CRC Check Low|CRC Check High ... ... @@ -569,6 +569,7 @@ 569 569 * has_CRC: 1 570 570 * timeout: 1500 (Fill in the test according to the actual situation) 571 571 568 + 572 572 So the input command is: 573 573 574 574 AT+DYSENSOR=A1,8,A103000000019CAA,8,24,1,1500 ... ... @@ -579,6 +579,10 @@ 579 579 |Type Code|Length (Bytes)|Measured Value 580 580 |A1|2|0x000A 581 581 579 + 580 + 581 + 582 + 582 582 Related commands: 583 583 584 584 AT+DYSENSOR=A1,0 –> Delete 3^^rd^^ party sensor A1. ... ... @@ -586,7 +586,7 @@ 586 586 AT+DYSENSOR ~-~-> List All 3^^rd^^ Party Sensor. Like below: 587 587 588 588 589 - (% style="color:#037691" %)**Downlink Command:590 +**Downlink Command: ** 590 590 591 591 **delete custom sensor A1:** 592 592 ... ... @@ -596,10 +596,13 @@ 596 596 597 597 * 0xE5FF 598 598 599 -== 3.4 RS485 Test Command == 600 600 601 -(% style="color:#037691" %)**AT Command:** 602 602 602 +1. 603 +11. RS485 Test Command 604 + 605 +**AT Command:** 606 + 603 603 |**Command Example**|**Function**|**Response** 604 604 |AT+RSWRITE=xxxxxx|((( 605 605 Send command to 485 sensor ... ... @@ -612,15 +612,19 @@ 612 612 AT+RSWRITE=0103000001840A 613 613 614 614 615 - (% style="color:#037691" %)**Downlink Command:**619 +**Downlink Command:** 616 616 617 617 * 0xE20103000001840A Same as: AT+RSWRITE=0103000001840A 618 618 619 -== 3.5 RS485 response timeout == 620 620 624 + 625 + 626 +1. 627 +11. RS485 response timeout 628 + 621 621 Feature: Set or get extended time to receive 485 sensor data. 622 622 623 - (% style="color:#037691" %)**AT Command:**631 +**AT Command:** 624 624 625 625 |**Command Example**|**Function**|**Response** 626 626 |AT+DTR=1000|((( ... ... @@ -629,8 +629,9 @@ 629 629 Range : 0~~10000 630 630 )))|OK 631 631 632 -(% style="color:#037691" %)**Downlink Command:** 633 633 641 +**Downlink Command:** 642 + 634 634 Format: Command Code (0xE0) followed by 3 bytes time value. 635 635 636 636 If the downlink payload=E0000005, it means set the END Node’s Transmit Interval to 0x000005=5(S), while type code is E0. ... ... @@ -638,11 +638,16 @@ 638 638 * Example 1: Downlink Payload: E0000005 ~/~/ Set Transmit Interval (DTR) = 5 seconds 639 639 * Example 2: Downlink Payload: E000000A ~/~/ Set Transmit Interval (DTR) = 10 seconds 640 640 641 -== 3.6 Set Sensor Type == 642 642 651 + 652 + 653 +1. 654 +11. Set Sensor Type 655 + 656 + 643 643 Feature: Set sensor in used. If there are 6 sensors, user can set to only send 5 sensors values. 644 644 645 -See [[definition>> ||anchor="H"]] for the sensor type.659 +See [[definition>>path:#Sensor_types]] for the sensor type. 646 646 647 647 648 648 |(% rowspan="2" %)Byte3|Bit23|Bit22|Bit21|Bit20|Bit19|Bit18|Bit17|Bit16 ... ... @@ -668,11 +668,13 @@ 668 668 Direction 669 669 )))|Wind Speed|BAT 670 670 671 -(% style="color:#037691" %)**AT Command:** 672 672 686 +**AT Command:** 687 + 673 673 |**Command Example**|**Function**|**Response** 674 674 |AT+STYPE=80221|Set sensor types|OK 675 675 691 + 676 676 Eg: The setting command **AT+STYPE=802212** means: 677 677 678 678 |(% rowspan="2" %)Byte3|Bit23|Bit22|Bit21|Bit20|Bit19|Bit18|Bit17|Bit16 ... ... @@ -685,12 +685,13 @@ 685 685 So wsc1-L will upload the following data: Custom Sensor A1, Rain Gauge,CO2,BAT. 686 686 687 687 688 - (% style="color:#037691" %)**Downlink Command:**704 +**Downlink Command:** 689 689 690 690 * 0xE400802212 Same as: AT+STYPE=80221 691 691 692 -(% style="color:red" %)**Note:** 693 693 709 +Note: 710 + 694 694 ~1. The sensor type will not be saved to flash, and the value will be updated every time the sensor is restarted or rescanned 695 695 696 696 ... ... @@ -697,20 +697,21 @@ 697 697 698 698 699 699 700 -= 4. Power consumption and battery = 717 +1. Power consumption and battery 718 +11. Total Power Consumption 701 701 702 -== 4.1 Total Power Consumption == 703 - 704 704 Dragino Weather Station serial products include the main process unit ( WSC1-L ) and various sensors. The total power consumption equal total power of all above units. The power consumption for main process unit WSC1-L is 18ma @ 12v. and the power consumption of each sensor can be found on the Sensors chapter. 705 705 706 706 707 -== 4.2 Reduce power consumption == 723 +1. 724 +11. Reduce power consumption 708 708 709 709 The main process unit WSC1-L is set to LoRaWAN Class C by default. If user want to reduce the power consumption of this unit, user can set it to run in Class A. In Class A mode, WSC1-L will not be to get real-time downlink command from IoT Server. 710 710 711 711 712 712 713 -== 4.3 Battery == 730 +1. 731 +11. Battery 714 714 715 715 All sensors are only power by external power source. If external power source is off. All sensor won’t work. 716 716 ... ... @@ -719,10 +719,13 @@ 719 719 720 720 721 721 722 -= 5. Main Process Unit WSC1-L = 723 723 724 -== 5.1 Features == 725 725 742 + 743 + 744 +1. Main Process Unit WSC1-L 745 +11. Features 746 + 726 726 * Wall Attachable. 727 727 * LoRaWAN v1.0.3 Class A protocol. 728 728 * RS485 / Modbus protocol ... ... @@ -735,23 +735,30 @@ 735 735 * IP Rating: IP65 736 736 * Support default sensors or 3rd party RS485 sensors 737 737 738 -== 5.2 Power Consumption == 739 739 760 + 761 + 762 +1. 763 +11. Power Consumption 764 + 740 740 WSC1-L (without external sensor): Idle: 4mA, Transmit: max 40mA 741 741 742 742 743 743 744 -== 5.3 Storage & Operation Temperature == 769 +1. 770 +11. Storage & Operation Temperature 745 745 746 746 -20°C to +60°C 747 747 748 748 749 -== 5.4 Pin Mapping == 775 +1. 776 +11. Pin Mapping 750 750 751 751 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image004.png]] 752 752 753 753 754 -== 5.5 Mechanical == 781 +1. 782 +11. Mechanical 755 755 756 756 Refer LSn50v2 enclosure drawing in: [[https:~~/~~/www.dragino.com/downloads/index.php?dir=LSN50-LoRaST/Mechanical_Drawing/>>url:https://www.dragino.com/downloads/index.php?dir=LSN50-LoRaST/Mechanical_Drawing/]] 757 757 ... ... @@ -758,7 +758,8 @@ 758 758 759 759 760 760 761 -== 5.6 Connect to RS485 Sensors == 789 +1. 790 +11. Connect to RS485 Sensors 762 762 763 763 WSC1-L includes a RS485 converter PCB. Which help it easy to connect multiply RS485 sensors. Below is the photo for reference. 764 764 ... ... @@ -774,10 +774,9 @@ 774 774 775 775 776 776 777 -= 6. Weather Sensors = 806 +1. Weather Sensors 807 +11. Rain Gauge ~-~- WSS-01 778 778 779 -== 6.1 Rain Gauge ~-~- WSS-01 == 780 - 781 781 WSS-01 RS485 Rain Gauge is used in meteorology and hydrology to gather and measure the amount of liquid precipitation (mainly rainfall) over an area. 782 782 783 783 ... ... @@ -802,8 +802,9 @@ 802 802 803 803 804 804 805 -=== 6.1.1 Feature === 806 - 833 +* 834 +*1. 835 +*11. Feature 807 807 * RS485 Rain Gauge 808 808 * Small dimension, easy to install 809 809 * Vents under funnel, avoid leaf or other things to avoid rain flow. ... ... @@ -810,8 +810,10 @@ 810 810 * ABS enclosure. 811 811 * Horizontal adjustable. 812 812 813 -=== 6.1.2 Specification === 814 814 843 +* 844 +*1. 845 +*11. Specification 815 815 * Resolution: 0.2mm 816 816 * Accuracy: ±3% 817 817 * Rainfall strength: 0mm~4mm/min (max 8mm/min) ... ... @@ -821,19 +821,27 @@ 821 821 * Working Humidity: <100% (no dewing) 822 822 * Power Consumption: 4mA @ 12v. 823 823 824 -=== 6.1.3 Dimension === 825 825 826 - [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image019.jpg||alt="c2d3aee592ccc873bea6dd891451df2"]] 827 827 828 828 829 -=== 6.1.4 Pin Mapping === 858 +1. 859 +11. 860 +111. Dimension 830 830 862 + [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image019.jpg||alt="c2d3aee592ccc873bea6dd891451df2"]] 863 + 864 +1. 865 +11. 866 +111. Pin Mapping 867 + 831 831 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image020.png]] 832 832 833 833 834 834 835 835 836 -=== 6.1.5 Installation Notice === 873 +1. 874 +11. 875 +111. Installation Notice 837 837 838 838 Do not power on while connect the cables. Double check the wiring before power on. 839 839 ... ... @@ -840,14 +840,14 @@ 840 840 Installation Photo as reference: 841 841 842 842 843 - (% style="color:#4472c4" %)**882 +**Install on Ground:** 844 844 845 845 WSS-01 Rain Gauge include screws so can install in ground directly . 846 846 847 847 848 - (% style="color:#4472c4" %)**887 +**Install on pole:** 849 849 850 -If user want to install on pole, they can purchase the (% style="color:#4472c4" %)**(%%), and install as below:889 +If user want to install on pole, they can purchase the **WS-K2 : Bracket Kit for Pole installation**, and install as below: 851 851 852 852 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image021.png]] 853 853 ... ... @@ -858,11 +858,12 @@ 858 858 859 859 WSSC-K2 dimension document, please see: 860 860 861 -https:~/~/www.dragino.com/downloads/index.php?dir=LoRa_End_Node/Weather_Station/ 900 +https:~/~/www.dragino.com/downloads/index.php?dir=LoRa_End_Node/Weather_Station/ 862 862 863 863 864 864 865 -== 6.2 Wind Speed/Direction ~-~- WSS-02 == 904 +1. 905 +11. Wind Speed/Direction ~-~- WSS-02 866 866 867 867 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image023.png]] 868 868 ... ... @@ -877,13 +877,16 @@ 877 877 processor WSC1-L can detect and upload the wind speed and direction to the IoT Server via wireless LoRaWAN protocol. 878 878 879 879 880 -=== 6.2.1 Feature === 881 - 920 +* 921 +*1. 922 +*11. Feature 882 882 * RS485 wind speed / direction sensor 883 883 * PC enclosure, resist corrosion 884 884 885 -=== 6.2.2 Specification === 886 886 927 +* 928 +*1. 929 +*11. Specification 887 887 * Wind speed range: 0 ~~ 30m/s, (always show 30m/s for higher speed) 888 888 * Wind direction range: 0 ~~ 360° 889 889 * Start wind speed: ≤0.3m/s ... ... @@ -895,22 +895,32 @@ 895 895 * Power Consumption: 13mA ~~ 12v. 896 896 * Cable Length: 2 meters 897 897 898 -=== 6.2.3 Dimension === 899 899 942 +1. 943 +11. 944 +111. Dimension 945 + 946 + 900 900 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image024.jpg]][[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image025.jpg]] 901 901 902 902 903 -=== 6.2.4 Pin Mapping === 950 +1. 951 +11. 952 +111. Pin Mapping 904 904 905 905 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image020.png]] 906 906 907 907 908 -=== 6.2.4 Angle Mapping === 957 +1. 958 +11. 959 +111. Angle Mapping 909 909 910 910 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image026.png]] 911 911 912 912 913 -=== 6.2.5 Installation Notice === 964 +1. 965 +11. 966 +111. Installation Notice 914 914 915 915 Do not power on while connect the cables. Double check the wiring before power on. 916 916 ... ... @@ -931,7 +931,8 @@ 931 931 932 932 933 933 934 -== 6.3 CO2/PM2.5/PM10 ~-~- WSS-03 == 987 +1. 988 +11. CO2/PM2.5/PM10 ~-~- WSS-03 935 935 936 936 WSS-03 is a RS485 Air Quality sensor. It can monitor CO2, PM2.5 and PM10 at the same time. 937 937 ... ... @@ -946,14 +946,17 @@ 946 946 processor WSC1-L can detect and upload the environment CO2, PM2.5 and PM10 to the IoT Server via wireless LoRaWAN protocol. 947 947 948 948 949 -=== 6.3.1 Feature === 950 - 1003 +* 1004 +*1. 1005 +*11. Feature 951 951 * RS485 CO2, PM2.5, PM10 sensor 952 952 * NDIR to measure CO2 with Internal Temperature Compensation 953 953 * Laser Beam Scattering to PM2.5 and PM10 954 954 955 -=== 6.3.2 Specification === 956 956 1011 +* 1012 +*1. 1013 +*11. Specification 957 957 * CO2 Range: 0~5000ppm, accuracy: ±3%F•S(25℃) 958 958 * CO2 resolution: 1ppm 959 959 * PM2.5/PM10 Range: 0~1000μg/m3 , accuracy ±3%F•S(25℃) ... ... @@ -968,18 +968,22 @@ 968 968 ** PM2.5/PM10: 15~80%RH (no dewing) 969 969 ** CO2: 0~95%RH 970 970 * Power Consumption: 50mA@ 12v. 1028 +*1. 1029 +*11. Dimension 971 971 972 -=== 6.3.3 Dimension === 973 - 974 974 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image028.png]] 975 975 976 976 977 -=== 6.3.4 Pin Mapping === 1034 +1. 1035 +11. 1036 +111. Pin Mapping 978 978 979 979 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image020.png]] 980 980 981 981 982 -=== 6.3.5 Installation Notice === 1041 +1. 1042 +11. 1043 +111. Installation Notice 983 983 984 984 Do not power on while connect the cables. Double check the wiring before power on. 985 985 ... ... @@ -992,8 +992,10 @@ 992 992 993 993 994 994 995 -== 6.4 Rain/Snow Detect ~-~- WSS-04 == 1056 +1. 1057 +11. Rain/Snow Detect ~-~- WSS-04 996 996 1059 + 997 997 WSS-04 is a RS485 rain / snow detect sensor. It can monitor Rain or Snow event. 998 998 999 999 ... ... @@ -1008,14 +1008,17 @@ 1008 1008 1009 1009 1010 1010 1011 -=== 6.4.1 Feature === 1012 - 1074 +* 1075 +*1. 1076 +*11. Feature 1013 1013 * RS485 Rain/Snow detect sensor 1014 1014 * Surface heating to dry 1015 1015 * grid electrode uses Electroless Nickel/Immersion Gold design for resist corrosion 1016 1016 1017 -=== 6.4.2 Specification === 1018 1018 1082 +* 1083 +*1. 1084 +*11. Specification 1019 1019 * Detect if there is rain or snow 1020 1020 * Input Power: DC 12 ~~ 24v 1021 1021 * Interface: RS485 ... ... @@ -1025,17 +1025,26 @@ 1025 1025 ** No heating: 12mA @ 12v, 1026 1026 ** heating: 94ma @ 12v. 1027 1027 1028 -=== 6.4.3 Dimension === 1029 1029 1095 +1. 1096 +11. 1097 +111. Dimension 1098 + 1099 + 1030 1030 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image031.png]] 1031 1031 1032 1032 1033 -=== 6.4.4 Pin Mapping === 1103 +1. 1104 +11. 1105 +111. Pin Mapping 1034 1034 1107 + 1035 1035 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image020.png]] 1036 1036 1037 1037 1038 -=== 6.4.5 Installation Notice === 1111 +1. 1112 +11. 1113 +111. Installation Notice 1039 1039 1040 1040 Do not power on while connect the cables. Double check the wiring before power on. 1041 1041 ... ... @@ -1049,9 +1049,10 @@ 1049 1049 1050 1050 1051 1051 1052 -=== 6.4.6 Heating === 1127 +1. 1128 +11. 1129 +111. Heating 1053 1053 1054 - 1055 1055 WSS-04 supports auto-heat feature. When the temperature is below the heat start temperature 15℃, WSS-04 starts to heat and stop at stop temperature (default is 25℃). 1056 1056 1057 1057 ... ... @@ -1058,8 +1058,10 @@ 1058 1058 1059 1059 1060 1060 1061 -== 6.5 Temperature, Humidity, Illuminance, Pressure ~-~- WSS-05 == 1137 +1. 1138 +11. Temperature, Humidity, Illuminance, Pressure ~-~- WSS-05 1062 1062 1140 + 1063 1063 WSS-05 is a 4 in 1 RS485 sensor which can monitor Temperature, Humidity, Illuminance and Pressure at the same time. 1064 1064 1065 1065 ... ... @@ -1070,12 +1070,15 @@ 1070 1070 processor WSC1-L can detect and upload environment Temperature, Humidity, Illuminance, Pressure to the IoT Server via wireless LoRaWAN protocol. 1071 1071 1072 1072 1073 -=== 6.5.1 Feature === 1074 - 1151 +* 1152 +*1. 1153 +*11. Feature 1075 1075 * RS485 Temperature, Humidity, Illuminance, Pressure sensor 1076 1076 1077 -=== 6.5.2 Specification === 1078 1078 1157 +* 1158 +*1. 1159 +*11. Specification 1079 1079 * Input Power: DC 12 ~~ 24v 1080 1080 * Interface: RS485 1081 1081 * Temperature Sensor Spec: ... ... @@ -1098,18 +1098,26 @@ 1098 1098 * Working Humidity: 10~90%RH 1099 1099 * Power Consumption: 4mA @ 12v 1100 1100 1101 -=== 6.5.3 Dimension === 1102 1102 1183 + 1184 +1. 1185 +11. 1186 +111. Dimension 1187 + 1188 + 1103 1103 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image034.jpg]] 1104 1104 1105 1105 1106 -=== 6.5.4 Pin Mapping === 1192 +1. 1193 +11. 1194 +111. Pin Mapping 1107 1107 1108 1108 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image020.png]] 1109 1109 1198 +1. 1199 +11. 1200 +111. Installation Notice 1110 1110 1111 -=== 6.5.5 Installation Notice === 1112 - 1113 1113 Do not power on while connect the cables. Double check the wiring before power on. 1114 1114 1115 1115 ... ... @@ -1120,8 +1120,10 @@ 1120 1120 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image030.png]] 1121 1121 1122 1122 1123 -== 6.6 Total Solar Radiation sensor ~-~- WSS-06 == 1212 +1. 1213 +11. Total Solar Radiation sensor ~-~- WSS-06 1124 1124 1215 + 1125 1125 WSS-06 is Total Radiation Sensor can be used to measure the total solar radiation in the spectral range of 0.3 to 3 μm (300 to 3000 nm). If the sensor face is down, the reflected radiation can be measured, and the shading ring can also be used to measure the scattered radiation. 1126 1126 1127 1127 ... ... @@ -1137,14 +1137,17 @@ 1137 1137 1138 1138 1139 1139 1140 -=== 6.6.1 Feature === 1141 - 1231 +* 1232 +*1. 1233 +*11. Feature 1142 1142 * RS485 Total Solar Radiation sensor 1143 1143 * Measure Total Radiation between 0.3~3μm(300~3000nm) 1144 1144 * Measure Reflected Radiation if sense area towards ground. 1145 1145 1146 -=== 6.6.2 Specification === 1147 1147 1239 +* 1240 +*1. 1241 +*11. Specification 1148 1148 * Input Power: DC 5 ~~ 24v 1149 1149 * Interface: RS485 1150 1150 * Detect spectrum: 0.3~3μm(300~3000nm) ... ... @@ -1158,17 +1158,25 @@ 1158 1158 * Working Humidity: 10~90%RH 1159 1159 * Power Consumption: 4mA @ 12v 1160 1160 1161 -=== 6.6.3 Dimension === 1162 1162 1256 + 1257 +1. 1258 +11. 1259 +111. Dimension 1260 + 1163 1163 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image036.png]] 1164 1164 1165 1165 1166 -=== 6.6.4 Pin Mapping === 1264 +1. 1265 +11. 1266 +111. Pin Mapping 1167 1167 1168 1168 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image020.png]] 1169 1169 1170 1170 1171 -=== 6.6.5 Installation Notice === 1271 +1. 1272 +11. 1273 +111. Installation Notice 1172 1172 1173 1173 Do not power on while connect the cables. Double check the wiring before power on. 1174 1174 ... ... @@ -1176,8 +1176,9 @@ 1176 1176 1177 1177 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image038.png]] 1178 1178 1281 +1. 1282 +11. PAR (Photosynthetically Available Radiation) ~-~- WSS-07 1179 1179 1180 -== 6.7 PAR (Photosynthetically Available Radiation) ~-~- WSS-07 == 1181 1181 1182 1182 WSS-07 photosynthetically active radiation sensor is mainly used to measure the photosynthetically active radiation of natural light in the wavelength range of 400-700nm. 1183 1183 ... ... @@ -1194,7 +1194,9 @@ 1194 1194 processor WSC1-L can detect and upload Photosynthetically Available Radiation to the IoT Server via wireless LoRaWAN protocol. 1195 1195 1196 1196 1197 -=== 6.7.1 Feature === 1300 +1. 1301 +11. 1302 +111. Feature 1198 1198 1199 1199 PAR (Photosynthetically Available Radiation) sensor measure 400 ~~ 700nm wavelength nature light’s Photosynthetically Available Radiation. 1200 1200 ... ... @@ -1202,8 +1202,9 @@ 1202 1202 When nature light shine on the sense area, it will generate a signal base on the incidence radiation strength. 1203 1203 1204 1204 1205 -=== 6.7.2 Specification === 1206 - 1310 +* 1311 +*1. 1312 +*11. Specification 1207 1207 * Input Power: DC 5 ~~ 24v 1208 1208 * Interface: RS485 1209 1209 * Response Spectrum: 400~700nm ... ... @@ -1215,17 +1215,25 @@ 1215 1215 * Working Humidity: 10~90%RH 1216 1216 * Power Consumption: 3mA @ 12v 1217 1217 1218 -=== 6.7.3 Dimension === 1219 1219 1220 -[[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image036.png]] 1221 1221 1326 +1. 1327 +11. 1328 +111. Dimension 1222 1222 1223 -=== 6.7.4 Pin Mapping === 1224 1224 1331 +[[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image036.png]] 1332 + 1333 +1. 1334 +11. 1335 +111. Pin Mapping 1336 + 1225 1225 [[image:file:///C:/Users/93456/AppData/Local/Temp/msohtmlclip1/01/clip_image020.png]] 1226 1226 1227 1227 1228 -=== 6.7.5 Installation Notice === 1340 +1. 1341 +11. 1342 +111. Installation Notice 1229 1229 1230 1230 Do not power on while connect the cables. Double check the wiring before power on. 1231 1231 ... ... @@ -1272,13 +1272,12 @@ 1272 1272 Yes, connect the sensor to RS485 bus and see instruction: [[add sensors.>>path:#Add_sensor]] 1273 1273 1274 1274 1275 -= 8. Trouble Shooting = 1389 += 8. Trouble Shooting = 1276 1276 1277 1277 1278 1278 1279 1279 1280 1280 1281 - 1282 1282 = 9. Order Info = 1283 1283 1284 1284 ... ... @@ -1297,6 +1297,7 @@ 1297 1297 * **IN865**: LoRaWAN IN865 band 1298 1298 * **CN470**: LoRaWAN CN470 band 1299 1299 1413 + 1300 1300 == 9.2 Sensors == 1301 1301 1302 1302 |**Sensor Model**|**Part Number** ... ... @@ -1309,6 +1309,8 @@ 1309 1309 |**Total Solar Radiation Sensor**|WSS-06 1310 1310 |**PAR (Photosynthetically Available Radiation)**|WSS-07 1311 1311 1426 + 1427 + 1312 1312 = 10. Support = 1313 1313 1314 1314 * 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.
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