Changes for page LA66 LoRaWAN Shield User Manual
Last modified by Xiaoling on 2023/05/26 14:19
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... ... @@ -1,1 +1,1 @@ 1 -LA66 LoRaWAN Shield UserManual1 +LA66 LoRaWAN Module - Content
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... ... @@ -1,64 +1,32 @@ 1 1 2 2 3 -**Table of Contents:** 4 - 5 5 {{toc/}} 6 6 7 7 8 8 7 += 1. LA66 LoRaWAN Module = 9 9 10 -= 1. LA66 LoRaWAN Shield = 11 11 10 +== 1.1 What is LA66 LoRaWAN Module == 12 12 13 -== 1.1 Overview == 14 14 13 +(% style="color:blue" %)**Dragino LA66**(%%) is a small wireless LoRaWAN module that offers a very compelling mix of long-range, low power consumption, and secure data transmission. It is designed to facilitate developers to quickly deploy industrial-level LoRaWAN and IoT solutions. It helps users to turn the idea into a practical application and make the Internet of Things a reality. It is easy to create and connect your things everywhere. 15 15 16 -((( 17 -[[image:image-20220715000826-2.png||height="145" width="220"]] 18 -))) 15 +(% style="color:blue" %)**LA66**(%%) is a ready-to-use module that includes the (% style="color:blue" %)**LoRaWAN v1.0.4 protocol**(%%). The LoRaWAN stack used in LA66 is used in more than 1 million LoRaWAN End Devices deployed world widely. This mature LoRaWAN stack greatly reduces the risk to make stable LoRaWAN Sensors to support different LoRaWAN servers and different countries' standards. External MCU can use AT command to call LA66 and start to transmit data via the LoRaWAN protocol. 19 19 20 -((( 21 - 22 -))) 23 - 24 -((( 25 -(% style="color:blue" %)**LA66 LoRaWAN Shield**(%%) is the Arduino shield base on LA66. Users can use LA66 LoRaWAN Shield to rapidly add LoRaWAN or peer-to-peer LoRa wireless function to Arduino projects. 26 -))) 27 - 28 -((( 29 -((( 30 -(% style="color:blue" %)**LA66**(%%) is a ready-to-use module that includes the (% style="color:blue" %)**LoRaWAN v1.0.3 protocol**(%%). The LoRaWAN stack used in LA66 is used in more than 1 million LoRaWAN End Devices deployed world widely. This mature LoRaWAN stack greatly reduces the risk to make stable LoRaWAN Sensors to support different LoRaWAN servers and different countries' standards. External MCU can use AT command to call LA66 and start to transmit data via the LoRaWAN protocol. 31 -))) 32 -))) 33 - 34 -((( 35 -((( 36 36 Each LA66 module includes a (% style="color:blue" %)**world-unique OTAA key**(%%) for LoRaWAN registration. 37 -))) 38 -))) 39 39 40 -((( 41 -((( 42 42 Besides the support of the LoRaWAN protocol, LA66 also supports (% style="color:blue" %)**open-source peer-to-peer LoRa Protocol**(%%) for the none-LoRaWAN application. 43 -))) 44 -))) 45 45 46 -((( 47 -((( 48 48 LA66 is equipped with (% style="color:blue" %)**TCXO crystal**(%%) which ensures the module can achieve stable performance in extreme temperatures. 49 -))) 50 -))) 51 51 52 52 53 - 54 54 == 1.2 Features == 55 55 56 - 57 -* Arduino Shield base on LA66 LoRaWAN module 58 -* Support LoRaWAN v1.0.3 protocol 26 +* Support LoRaWAN v1.0.4 protocol 59 59 * Support peer-to-peer protocol 60 60 * TCXO crystal to ensure RF performance on low temperature 61 -* SMA connector 29 +* SMD Antenna pad and i-pex antenna connector 62 62 * Available in different frequency LoRaWAN frequency bands. 63 63 * World-wide unique OTAA keys. 64 64 * AT Command via UART-TTL interface ... ... @@ -65,9 +65,10 @@ 65 65 * Firmware upgradable via UART interface 66 66 * Ultra-long RF range 67 67 68 -== 1.3 Specification == 69 69 70 70 38 +== 1.3 Specification == 39 + 71 71 * CPU: 32-bit 48 MHz 72 72 * Flash: 256KB 73 73 * RAM: 64KB ... ... @@ -86,312 +86,382 @@ 86 86 * LoRa Rx current: <9 mA 87 87 * I/O Voltage: 3.3v 88 88 89 -== 1.4 Pin Mapping & LED == 90 90 91 91 92 - [[image:image-20220817085048-1.png||height="533" width="734"]]60 +== 1.4 AT Command == 93 93 62 +AT Command is valid over Main TXD and Main RXD. Serial Baud Rate is 9600. AT commands can be found in AT Command documents. 94 94 95 95 96 -~1. The LED lights up red when there is an upstream data packet 97 -2. When the network is successfully connected, the green light will be on for 5 seconds 98 -3. Purple light on when receiving downlink data packets 65 +== 1.5 Dimension == 99 99 67 +[[image:image-20220517072526-1.png]] 100 100 101 -[[image:image-20220820112305-1.png||height="515" width="749"]] 102 102 103 103 71 +== 1.6 Pin Mapping == 104 104 105 -== 1.5 Example: Use AT Command to communicate with LA66 module via Arduino UNO. == 106 106 74 +[[image:image-20220523101537-1.png]] 107 107 108 -**Show connection diagram:** 109 109 110 110 111 - [[image:image-20220723170210-2.png||height="908"width="681"]]78 +== 1.7 Land Pattern == 112 112 80 +[[image:image-20220517072821-2.png]] 113 113 114 114 115 -(% style="color:blue" %)**1. open Arduino IDE** 116 116 84 += 2. LA66 LoRaWAN Shield = 117 117 118 -[[image:image-20220723170545-4.png]] 119 119 87 +== 2.1 Overview == 120 120 89 +LA66 LoRaWAN Shield is the Arduino shield base on LA66. Users can use LA66 LoRaWAN Shield to rapidly add LoRaWAN or peer-to-peer LoRa wireless function to Arduino projects. 121 121 122 -(% style="color:blue" %)**2. Open project** 123 123 92 +== 2.2 Features == 124 124 125 -LA66-LoRaWAN-shield-AT-command-via-Arduino-UNO source code link: [[https:~~/~~/www.dropbox.com/sh/cx0pspkwu62pr97/AAAbKh2ioPdZfSDtdDpooYqha?dl=0>>https://www.dropbox.com/sh/cx0pspkwu62pr97/AAAbKh2ioPdZfSDtdDpooYqha?dl=0]] 94 +* Arduino Shield base on LA66 LoRaWAN module 95 +* Support LoRaWAN v1.0.4 protocol 96 +* Support peer-to-peer protocol 97 +* TCXO crystal to ensure RF performance on low temperature 98 +* SMA connector 99 +* Available in different frequency LoRaWAN frequency bands. 100 +* World-wide unique OTAA keys. 101 +* AT Command via UART-TTL interface 102 +* Firmware upgradable via UART interface 103 +* Ultra-long RF range 126 126 127 127 128 -[[image:image-20220726135239-1.png]] 129 129 107 +== 2.3 Specification == 130 130 109 +* CPU: 32-bit 48 MHz 110 +* Flash: 256KB 111 +* RAM: 64KB 112 +* Input Power Range: 1.8v ~~ 3.7v 113 +* Power Consumption: < 4uA. 114 +* Frequency Range: 150 MHz ~~ 960 MHz 115 +* Maximum Power +22 dBm constant RF output 116 +* High sensitivity: -148 dBm 117 +* Temperature: 118 +** Storage: -55 ~~ +125℃ 119 +** Operating: -40 ~~ +85℃ 120 +* Humidity: 121 +** Storage: 5 ~~ 95% (Non-Condensing) 122 +** Operating: 10 ~~ 95% (Non-Condensing) 123 +* LoRa Tx Current: <90 mA at +17 dBm, 108 mA at +22 dBm 124 +* LoRa Rx current: <9 mA 125 +* I/O Voltage: 3.3v 131 131 132 -(% style="color:blue" %)**3. Click the button marked 1 in the figure to compile, and after the compilation is complete, click the button marked 2 in the figure to upload** 133 133 134 134 135 - [[image:image-20220726135356-2.png]]129 +== 2.4 Pin Mapping & LED == 136 136 137 137 138 138 139 - (% style="color:blue"%)**4.After the uploadissuccessful,open the serial portmonitoringand sendtheATcommand**133 +== 2.5 Example: Use AT Command to communicate with LA66 module via Arduino UNO. == 140 140 141 141 142 -[[image:image-20220723172235-7.png||height="480" width="1027"]] 143 143 137 +== 2.6 Example: Join TTN network and send an uplink message, get downlink message. == 144 144 145 145 146 -== 1.6 Example: Join TTN network and send an uplink message, get downlink message. == 147 147 141 +== 2.7 Example: Log Temperature Sensor(DHT11) and send data to TTN, show it in DataCake. == 148 148 149 -(% style="color:blue" %)**1. Open project** 150 150 151 151 152 - Join-TTN-networksourcecodelink: [[https:~~/~~/www.dropbox.com/sh/0sjyncafa0gjv00/AACC2m1orov-QHRkvH8-ddCka?dl=0>>https://www.dropbox.com/sh/0sjyncafa0gjv00/AACC2m1orov-QHRkvH8-ddCka?dl=0]]145 +== 2.8 Upgrade Firmware of LA66 LoRaWAN Shield == 153 153 154 154 155 - [[image:image-20220723172502-8.png]]148 +=== 2.8.1 Items needed for update === 156 156 150 +1. LA66 LoRaWAN Shield 151 +1. Arduino 152 +1. USB TO TTL Adapter 157 157 154 +[[image:image-20220602100052-2.png||height="385" width="600"]] 158 158 159 -(% style="color:blue" %)**2. Same steps as 1.5,after opening the serial port monitoring, it will automatically connect to the network and send packets** 160 160 157 +=== 2.8.2 Connection === 161 161 162 -[[image:image-20220723172938-9.png||height="652" width="1050"]] 163 163 160 +[[image:image-20220602101311-3.png||height="276" width="600"]] 164 164 165 165 166 - ==1.7 Example: Log TemperatureSensor(DHT11) andsenddatatoTTN,show itin Node-RED.==163 +(% style="color:blue" %)**LA66 LoRaWAN Shield**(%%) **<->** (% style="color:blue" %)**USB TTL** 167 167 165 +(% style="background-color:yellow" %)**GND <-> GND 166 +TXD <-> TXD 167 +RXD <-> RXD** 168 168 169 -(% style="color:blue" %)**1. Open project** 170 170 170 +Put a jumper cap on JP6 of LA66 LoRaWAN Shield. ( the jumper is to power on LA66 module) 171 171 172 - Log-Temperature-Sensor-and-send-data-to-TTN sourcecodelink: [[https:~~/~~/www.dropbox.com/sh/0aagmrpec1lxmva/AABMXWVMSHG9dK1_Zv_7xOmCa?dl=0>>https://www.dropbox.com/sh/0aagmrpec1lxmva/AABMXWVMSHG9dK1_Zv_7xOmCa?dl=0]]172 +Connect USB TTL Adapter to PC after connecting the wires 173 173 174 174 175 -[[image:image-20220 723173341-10.png||height="581" width="1014"]]175 +[[image:image-20220602102240-4.png||height="304" width="600"]] 176 176 177 177 178 +=== 2.8.3 Upgrade steps === 178 178 179 -(% style="color:blue" %)**2. Same steps as 2.5,after opening the serial port monitoring, it will automatically connect to the network and send packets** 180 180 181 +==== 1. Switch SW1 to put in ISP position ==== 181 181 182 -[[image:image-20220723173950-11.png||height="665" width="1012"]] 183 183 184 +[[image:image-20220602102824-5.png||height="306" width="600"]] 184 184 185 185 186 186 188 +==== 2. Press the RST switch once ==== 187 187 188 -(% style="color:blue" %)**3. Integration into Node-red via TTNV3** 189 189 191 +[[image:image-20220602104701-12.png||height="285" width="600"]] 190 190 191 -For the usage of Node-RED, please refer to: [[http:~~/~~/wiki.dragino.com/xwiki/bin/view/Main/Node-RED/>>http://wiki.dragino.com/xwiki/bin/view/Main/Node-RED/]] 192 192 193 193 194 - [[image:image-20220723175700-12.png||height="602"width="995"]]195 +==== 3. Open the Upgrade tool (Tremo Programmer) in PC and Upgrade ==== 195 195 196 196 198 +(% style="color:blue" %)**1. Software download link: [[https:~~/~~/www.dragino.com/downloads/index.php?dir=LSN50-LoRaST/Utility/LSN50N/>>https://www.dragino.com/downloads/index.php?dir=LSN50-LoRaST/Utility/LSN50N/]]** 197 197 198 -== 1.8 Example: How to join helium == 199 199 201 +[[image:image-20220602103227-6.png]] 200 200 201 -(% style="color:blue" %)**1. Create a new device.** 202 202 204 +[[image:image-20220602103357-7.png]] 203 203 204 -[[image:image-20220907165500-1.png||height="464" width="940"]] 205 205 206 206 208 +(% class="wikigeneratedid" id="HSelecttheCOMportcorrespondingtoUSBTTL" %) 209 +(% style="color:blue" %)**2. Select the COM port corresponding to USB TTL** 207 207 208 -(% style="color:blue" %)**2. Save the device after filling in the necessary information.** 209 209 212 +[[image:image-20220602103844-8.png]] 210 210 211 -[[image:image-20220907165837-2.png||height="375" width="809"]] 212 212 213 213 216 +(% class="wikigeneratedid" id="HSelectthebinfiletoburn" %) 217 +(% style="color:blue" %)**3. Select the bin file to burn** 214 214 215 -(% style="color:blue" %)**3. Use AT commands.** 216 216 220 +[[image:image-20220602104144-9.png]] 217 217 218 -[[image:image-20220602100052-2.png||height="385" width="600"]] 219 219 223 +[[image:image-20220602104251-10.png]] 220 220 221 221 222 - (% style="color:#0000ff" %)**4.Use command AT+CFG toget device configuration**226 +[[image:image-20220602104402-11.png]] 223 223 224 224 225 -[[image:image-20220907170308-3.png||height="556" width="617"]] 226 226 230 +(% class="wikigeneratedid" id="HClicktostartthedownload" %) 231 +(% style="color:blue" %)**4. Click to start the download** 227 227 233 +[[image:image-20220602104923-13.png]] 228 228 229 -(% style="color:blue" %)**5. Network successfully.** 230 230 231 231 232 -[[image:image-20220907170436-4.png]] 237 +(% class="wikigeneratedid" id="HThefollowingfigureappearstoprovethattheburningisinprogress" %) 238 +(% style="color:blue" %)**5. Check update process** 233 233 234 234 241 +[[image:image-20220602104948-14.png]] 235 235 236 -(% style="color:blue" %)**6. Send uplink using command** 237 237 238 238 239 -[[image:image-20220912084334-1.png]] 245 +(% class="wikigeneratedid" id="HThefollowingpictureappearstoprovethattheburningissuccessful" %) 246 +(% style="color:blue" %)**The following picture shows that the burning is successful** 240 240 248 +[[image:image-20220602105251-15.png]] 241 241 242 -[[image:image-20220912084412-3.png]] 243 243 244 244 252 += 3. LA66 USB LoRaWAN Adapter = 245 245 246 -[[image:image-20220907170744-6.png||height="242" width="798"]] 247 247 255 +== 3.1 Overview == 248 248 257 +LA66 USB LoRaWAN Adapter is designed to fast turn USB devices to support LoRaWAN wireless features. It combines a CP2101 USB TTL Chip and LA66 LoRaWAN module which can easy to add LoRaWAN wireless feature to PC / Mobile phone or an embedded device that has USB Interface. 249 249 250 -== 1.9 Upgrade Firmware of LA66 LoRaWAN Shield == 251 251 260 +== 3.2 Features == 252 252 253 -=== 1.9.1 Items needed for update === 262 +* LoRaWAN USB adapter base on LA66 LoRaWAN module 263 +* Ultra-long RF range 264 +* Support LoRaWAN v1.0.4 protocol 265 +* Support peer-to-peer protocol 266 +* TCXO crystal to ensure RF performance on low temperature 267 +* Spring RF antenna 268 +* Available in different frequency LoRaWAN frequency bands. 269 +* World-wide unique OTAA keys. 270 +* AT Command via UART-TTL interface 271 +* Firmware upgradable via UART interface 254 254 255 255 256 -1. LA66 LoRaWAN Shield 257 -1. Arduino 258 -1. USB TO TTL Adapter 259 259 260 - [[image:image-20220602100052-2.png||height="385" width="600"]]275 +== 3.3 Specification == 261 261 277 +* CPU: 32-bit 48 MHz 278 +* Flash: 256KB 279 +* RAM: 64KB 280 +* Input Power Range: 5v 281 +* Frequency Range: 150 MHz ~~ 960 MHz 282 +* Maximum Power +22 dBm constant RF output 283 +* High sensitivity: -148 dBm 284 +* Temperature: 285 +** Storage: -55 ~~ +125℃ 286 +** Operating: -40 ~~ +85℃ 287 +* Humidity: 288 +** Storage: 5 ~~ 95% (Non-Condensing) 289 +** Operating: 10 ~~ 95% (Non-Condensing) 290 +* LoRa Tx Current: <90 mA at +17 dBm, 108 mA at +22 dBm 291 +* LoRa Rx current: <9 mA 262 262 263 263 264 -=== 1.9.2 Connection === 265 265 295 +== 3.4 Pin Mapping & LED == 266 266 267 -[[image:image-20220602101311-3.png||height="276" width="600"]] 268 268 269 269 270 -((( 271 -(% style="color:blue" %)**LA66 LoRaWAN Shield**(%%) **<->** (% style="color:blue" %)**USB TTL** 272 -))) 299 +== 3.5 Example: Send & Get Messages via LoRaWAN in PC == 273 273 274 -((( 275 -(% style="background-color:yellow" %)**GND <-> GND 276 -TXD <-> TXD 277 -RXD <-> RXD** 278 -))) 279 279 302 +Assume user already input the LA66 USB LoRaWAN Adapter OTAA Keys in TTN and there is already TTN network coverage. 280 280 281 -Put a jumper cap on JP6 of LA66 LoRaWAN Shield. ( the jumper is to power on LA66 module) 282 282 283 -Connect USB TTLafter connecting the wires305 +(% style="color:blue" %)**1. Connect the LA66 USB LoRaWAN adapter to PC** 284 284 285 285 286 -[[image:image-202206021 02240-4.png||height="304" width="600"]]308 +[[image:image-20220602171217-1.png||height="538" width="800"]] 287 287 288 288 311 +Open the serial port tool 289 289 290 - === 1.9.3 Upgradesteps ===313 +[[image:image-20220602161617-8.png]] 291 291 315 +[[image:image-20220602161718-9.png||height="457" width="800"]] 292 292 293 293 294 -==== (% style="color:blue" %)1. Switch SW1 to put in ISP position(%%) ==== 295 295 319 +(% style="color:blue" %)**2. Press the reset switch RST on the LA66 USB LoRaWAN Adapter to reset it.** 296 296 297 - [[image:image-20220602102824-5.png||height="306"width="600"]]321 +The following picture appears to prove that the LA66 USB LoRaWAN Adapter successfully Join the LoRaWAN network 298 298 299 299 324 +[[image:image-20220602161935-10.png||height="498" width="800"]] 300 300 301 301 302 -==== (% style="color:blue" %)2. Press the RST switch once(%%) ==== 303 303 328 +(% style="color:blue" %)**3. See Uplink Command** 304 304 305 - [[image:image-20220817085447-1.png]]330 +Command format: (% style="color:#4472c4" %)** AT+SENDB=<confirn_status>,<Fport>,<data_len>,<data>** 306 306 332 +example: AT+SENDB=01,02,8,05820802581ea0a5 307 307 334 +[[image:image-20220602162157-11.png||height="497" width="800"]] 308 308 309 309 310 -==== (% style="color:blue" %)3. Open the Upgrade tool (Tremo Programmer) in PC and Upgrade(%%) ==== 311 311 338 +(% style="color:blue" %)**4. Check to see if TTN received the message** 312 312 340 +[[image:image-20220602162331-12.png||height="420" width="800"]] 313 313 314 -((( 315 -(% style="color:blue" %)**1. Software download link: **(%%)**[[https:~~/~~/www.dropbox.com/sh/j0qyc7a9ejit7jk/AACtx2tK4gEv6YFXMIVUM4dLa?dl=0>>https://www.dropbox.com/sh/j0qyc7a9ejit7jk/AACtx2tK4gEv6YFXMIVUM4dLa?dl=0]]** 316 -))) 317 317 318 318 319 - [[image:image-20220602103227-6.png]]344 +== 3.6 Example: Send PC's CPU/RAM usage to TTN via python == 320 320 321 321 322 -[[image:imag e-20220602103357-7.png]]347 +**Use python as an example:**[[https:~~/~~/github.com/dragino/LA66/blob/main/Send_information_to_TTN_WindosPC.py>>https://github.com/dragino/LA66/blob/main/Send_information_to_TTN_WindosPC.py]] 323 323 324 324 350 +(% style="color:red" %)**Preconditions:** 325 325 326 -(% class="wikigeneratedid" id="HSelecttheCOMportcorrespondingtoUSBTTL" %) 327 -(% style="color:blue" %)**2. Select the COM port corresponding to USB TTL** 352 +(% style="color:red" %)**1. LA66 USB LoRaWAN Adapter works fine** 328 328 354 +(% style="color:red" %)**2. LA66 USB LoRaWAN Adapter is registered with TTN** 329 329 330 -[[image:image-20220602103844-8.png]] 331 331 332 332 358 +(% style="color:blue" %)**Steps for usage:** 333 333 334 -(% class="wikigeneratedid" id="HSelectthebinfiletoburn" %) 335 -(% style="color:blue" %)**3. Select the bin file to burn** 360 +(% style="color:blue" %)**1.**(%%) Press the reset switch RESET on the LA66 USB LoRaWAN Adapter 336 336 362 +(% style="color:blue" %)**2.**(%%) Run the python script in PC and see the TTN 337 337 338 -[[image:image-202206021 04144-9.png]]364 +[[image:image-20220602115852-3.png||height="450" width="1187"]] 339 339 340 340 341 -[[image:image-20220602104251-10.png]] 342 342 368 +== 3.7 Example: Send & Get Messages via LoRaWAN in RPi == 343 343 344 -[[image:image-20220602104402-11.png]] 345 345 371 +Assume user already input the LA66 USB LoRaWAN Adapter OTAA Keys in TTN and there is already TTN network coverage. 346 346 347 347 348 -(% class="wikigeneratedid" id="HClicktostartthedownload" %) 349 -(% style="color:blue" %)**4. Click to start the download** 374 +(% style="color:blue" %)**1. Connect the LA66 USB LoRaWAN Adapter to the Raspberry Pi** 350 350 376 +[[image:image-20220602171233-2.png||height="538" width="800"]] 351 351 352 -[[image:image-20220602104923-13.png]] 353 353 354 354 380 +(% style="color:blue" %)**2. Install Minicom in RPi.** 355 355 356 -(% class="wikigeneratedid" id="HThefollowingfigureappearstoprovethattheburningisinprogress" %) 357 -(% style="color:blue" %)**5. Check update process** 382 +(% id="cke_bm_509388S" style="display:none" %) (%%)Enter the following command in the RPi terminal 358 358 384 + (% style="background-color:yellow" %)**apt update** 359 359 360 - [[image:image-20220602104948-14.png]]386 + (% style="background-color:yellow" %)**apt install minicom** 361 361 362 362 389 +Use minicom to connect to the RPI's terminal 363 363 364 -(% class="wikigeneratedid" id="HThefollowingpictureappearstoprovethattheburningissuccessful" %) 365 -(% style="color:blue" %)**The following picture shows that the burning is successful** 391 +[[image:image-20220602153146-3.png||height="439" width="500"]] 366 366 367 367 368 -[[image:image-20220602105251-15.png]] 369 369 395 +(% style="color:blue" %)**3. Press the reset switch RST on the LA66 USB LoRaWAN Adapter.**(%%) 396 +(% style="color:blue" %)The following picture appears to prove that the LA66 USB LoRaWAN Adapter successfully entered the network 370 370 398 +[[image:image-20220602154928-5.png||height="436" width="500"]] 371 371 372 -= 2. FAQ = 373 373 374 374 375 - ==2.1 HowtoCompile SourceCodeforLA66? ==402 +(% style="color:blue" %)**4. Send Uplink message** 376 376 404 +Format: (% style="color:#4472c4" %)**AT+SENDB=<confirn_status>,<Fport>,<data_len>,<data>** 377 377 378 - Compilend Upload CodetoASR6601Platform :[[Instruction>>Main.User Manual for LoRaWAN End Nodes.LA66 LoRaWAN Module.Compile and Upload Code to ASR6601 Platform.WebHome]]406 +example: AT+SENDB=01,02,8,05820802581ea0a5 379 379 380 380 409 +[[image:image-20220602160339-6.png||height="517" width="600"]] 381 381 382 -== 2.2 Where to find Peer-to-Peer firmware of LA66? == 383 383 384 384 385 - Instructionfor LA66 PeertoPeerfirmware:[[Instruction >>doc:.Instructionfor LA66 Peerto Peerfirmware.WebHome]]413 +Check to see if TTN received the message 386 386 415 +[[image:image-20220602160627-7.png||height="369" width="800"]] 387 387 388 388 389 -= 3. Order Info = 390 390 419 +== 3.8 Example: LA66 USB Module got a message from LA66 LoRa Shield and send the sensor data to NodeRed. == 391 391 392 -**Part Number:** (% style="color:blue" %)**LA66-LoRaWAN-Shield-XXX** (%%) 393 393 394 394 423 +== 3.9 Upgrade Firmware of LA66 USB LoRaWAN Adapter == 424 + 425 + 426 + 427 + 428 += 4. Order Info = 429 + 430 + 431 +**Part Number:** (% style="color:blue" %)**LA66-XXX**(%%), (% style="color:blue" %)**LA66-LoRaWAN-Shield-XXX** (%%) **or** (% style="color:blue" %)**LA66-USB-LoRaWAN-Adapter-XXX** 432 + 433 + 395 395 (% style="color:blue" %)**XXX**(%%): The default frequency band 396 396 397 397 * (% style="color:red" %)**AS923**(%%): LoRaWAN AS923 band ... ... @@ -406,36 +406,9 @@ 406 406 407 407 408 408 409 -= 4. Reference = 410 410 449 += 5. Reference = 411 411 412 -* Hardware Design File for LA66 LoRaWAN Shield : [[Download>>https://www.dropbox.com/sh/a3wbmdcvqjxaqw5/AADZfvAiykJTK624RgMquH86a?dl=0]] 451 +* Hardware Design File for LA66 LoRaWAN Shield, LA66 USB LoRaWAN Adapter : [[Download>>https://www.dropbox.com/sh/a3wbmdcvqjxaqw5/AADZfvAiykJTK624RgMquH86a?dl=0]] 413 413 414 - 415 - 416 -= 5. FCC Statement = 417 - 418 - 419 -(% style="color:red" %)**FCC Caution:** 420 - 421 -Any Changes or modifications not expressly approved by the party responsible for compliance could void the user's authority to operate the equipment. 422 - 423 -This device complies with part 15 of the FCC Rules. Operation is subject to the following two conditions: (1) This device may not cause harmful interference, and (2) this device must accept any interference received, including interference that may cause undesired operation. 424 - 425 - 426 -(% style="color:red" %)**IMPORTANT NOTE: ** 427 - 428 -(% style="color:red" %)**Note:**(%%) This equipment has been tested and found to comply with the limits for a Class B digital device, pursuant to part 15 of the FCC Rules. These limits are designed to provide reasonable protection against harmful interference in a residential installation. This equipment generates, uses and can radiate radio frequency energy and, if not installed and used in accordance with the instructions, may cause harmful interference to radio communications. However, there is no guarantee that interference will not occur in a particular installation. If this equipment does cause harmful interference to radio or television reception, which can be determined by turning the equipment off and on, the user is encouraged to try to correct the interference by one or more of the following measures: 429 - 430 -—Reorient or relocate the receiving antenna. 431 - 432 -—Increase the separation between the equipment and receiver. 433 - 434 -—Connect the equipment into an outlet on a circuit different from that to which the receiver is connected. 435 - 436 -—Consult the dealer or an experienced radio/TV technician for help. 437 - 438 - 439 -(% style="color:red" %)**FCC Radiation Exposure Statement: ** 440 - 441 -This equipment complies with FCC radiation exposure limits set forth for an uncontrolled environment.This equipment should be installed and operated with minimum distance 20cm between the radiator& your body. 453 +
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