Changes for page LA66 LoRaWAN Shield User Manual
Last modified by Xiaoling on 2023/05/26 14:19
From version 165.1
edited by Edwin Chen
on 2022/09/24 13:43
on 2022/09/24 13:43
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... ... @@ -1,1 +1,1 @@ 1 -LA66 LoRaWAN Shield UserManual1 +LA66 LoRaWAN Module - Author
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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 ... ... @@ -66,9 +66,9 @@ 66 66 * Ultra-long RF range 67 67 68 68 37 + 69 69 == 1.3 Specification == 70 70 71 - 72 72 * CPU: 32-bit 48 MHz 73 73 * Flash: 256KB 74 74 * RAM: 64KB ... ... @@ -88,309 +88,370 @@ 88 88 * I/O Voltage: 3.3v 89 89 90 90 91 -== 1.4 Pin Mapping & LED == 92 92 60 +== 1.4 AT Command == 93 93 94 - [[image:image-20220817085048-1.png||height="533"width="734"]]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. 95 95 96 96 65 +== 1.5 Dimension == 97 97 98 -~1. The LED lights up red when there is an upstream data packet 99 -2. When the network is successfully connected, the green light will be on for 5 seconds 100 -3. Purple light on when receiving downlink data packets 67 +[[image:image-20220517072526-1.png]] 101 101 102 102 103 -[[image:image-20220820112305-1.png||height="515" width="749"]] 104 104 71 +== 1.6 Pin Mapping == 105 105 106 106 107 - == 1.5 Example:Use AT Command to communicate with LA66module viaArduino UNO.==74 +[[image:image-20220523101537-1.png]] 108 108 109 109 110 -**Show connection diagram:** 111 111 78 +== 1.7 Land Pattern == 112 112 113 -[[image:image-20220 723170210-2.png||height="908" width="681"]]80 +[[image:image-20220517072821-2.png]] 114 114 115 115 116 116 117 - (% style="color:blue"%)**1.openArduinoIDE**84 += 2. LA66 LoRaWAN Shield = 118 118 119 119 120 - [[image:image-20220723170545-4.png]]87 +== 2.1 Overview == 121 121 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. 122 122 123 123 124 - (% style="color:blue"%)**2.Open project**92 +== 2.2 Features == 125 125 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 - LA66-LoRaWAN-shield-AT-command-via-Arduino-UNO sourcecode link:[[https:~~/~~/www.dropbox.com/sh/cx0pspkwu62pr97/AAAbKh2ioPdZfSDtdDpooYqha?dl=0>>https://www.dropbox.com/sh/cx0pspkwu62pr97/AAAbKh2ioPdZfSDtdDpooYqha?dl=0]]105 +== 2.3 Specification == 128 128 107 +* CPU: 32-bit 48 MHz 108 +* Flash: 256KB 109 +* RAM: 64KB 110 +* Input Power Range: 1.8v ~~ 3.7v 111 +* Power Consumption: < 4uA. 112 +* Frequency Range: 150 MHz ~~ 960 MHz 113 +* Maximum Power +22 dBm constant RF output 114 +* High sensitivity: -148 dBm 115 +* Temperature: 116 +** Storage: -55 ~~ +125℃ 117 +** Operating: -40 ~~ +85℃ 118 +* Humidity: 119 +** Storage: 5 ~~ 95% (Non-Condensing) 120 +** Operating: 10 ~~ 95% (Non-Condensing) 121 +* LoRa Tx Current: <90 mA at +17 dBm, 108 mA at +22 dBm 122 +* LoRa Rx current: <9 mA 123 +* I/O Voltage: 3.3v 129 129 130 - [[image:image-20220726135239-1.png]]125 +== 2.4 Pin Mapping & LED == 131 131 132 132 133 133 134 - (% style="color:blue"%)**3.Click thebutton marked1in the figure tocompile,andafterthecompilationscomplete,clickthebuttonmarked2 in thefiguretoupload**129 +== 2.5 Example: Use AT Command to communicate with LA66 module via Arduino UNO. == 135 135 136 136 137 -[[image:image-20220726135356-2.png]] 138 138 133 +== 2.6 Example: Join TTN network and send an uplink message, get downlink message. == 139 139 140 140 141 -(% style="color:blue" %)**4. After the upload is successful, open the serial port monitoring and send the AT command** 142 142 137 +== 2.7 Example: Log Temperature Sensor(DHT11) and send data to TTN, show it in DataCake. == 143 143 144 -[[image:image-20220723172235-7.png||height="480" width="1027"]] 145 145 146 146 141 +== 2.8 Upgrade Firmware of LA66 LoRaWAN Shield == 147 147 148 -== 1.6 Example: Join TTN network and send an uplink message, get downlink message. == 149 149 144 +=== 2.8.1 Items needed for update === 150 150 151 -(% style="color:blue" %)**1. Open project** 146 +1. LA66 LoRaWAN Shield 147 +1. Arduino 148 +1. USB TO TTL Adapter 152 152 150 +[[image:image-20220602100052-2.png||height="385" width="600"]] 153 153 154 -Join-TTN-network source code link: [[https:~~/~~/www.dropbox.com/sh/0sjyncafa0gjv00/AACC2m1orov-QHRkvH8-ddCka?dl=0>>https://www.dropbox.com/sh/0sjyncafa0gjv00/AACC2m1orov-QHRkvH8-ddCka?dl=0]] 155 155 153 +=== 2.8.2 Connection === 156 156 157 -[[image:image-20220723172502-8.png]] 158 158 156 +[[image:image-20220602101311-3.png||height="276" width="600"]] 159 159 160 160 161 -(% style="color:blue" %)** 2.Samesteps as 1.5,after opening the serialportmonitoring,itwill automaticallyconnect tothe network and sendpackets**159 +(% style="color:blue" %)**LA66 LoRaWAN Shield**(%%) **<->** (% style="color:blue" %)**USB TTL** 162 162 163 163 164 -[[image:image-20220723172938-9.png||height="652" width="1050"]] 162 +(% style="background-color:yellow" %)**GND <-> GND 163 +TXD <-> TXD 164 +RXD <-> RXD** 165 165 166 166 167 +Put a jumper cap on JP6 of LA66 LoRaWAN Shield. ( the jumper is to power on LA66 module) 167 167 168 - == 1.7 Example: Log TemperatureSensor(DHT11)andsend datatoTTN,show it inNode-RED.==169 +Connect USB TTL Adapter to PC after connecting the wires 169 169 170 170 171 - (% style="color:blue" %)**1.Openproject**172 +[[image:image-20220602102240-4.png||height="304" width="600"]] 172 172 173 173 174 - Log-Temperature-Sensor-and-send-data-to-TTN sourcecode link: [[https:~~/~~/www.dropbox.com/sh/0aagmrpec1lxmva/AABMXWVMSHG9dK1_Zv_7xOmCa?dl=0>>https://www.dropbox.com/sh/0aagmrpec1lxmva/AABMXWVMSHG9dK1_Zv_7xOmCa?dl=0]]175 +=== 2.8.3 Upgrade steps === 175 175 176 176 177 - [[image:image-20220723173341-10.png||height="581"width="1014"]]178 +==== 1. Switch SW1 to put in ISP position ==== 178 178 179 179 181 +[[image:image-20220602102824-5.png||height="306" width="600"]] 180 180 181 -(% 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** 182 182 184 +==== 2. Press the RST switch once ==== 183 183 184 -[[image:image-20220 723173950-11.png||height="665" width="1012"]]186 +[[image:image-20220602104701-12.png||height="285" width="600"]] 185 185 186 186 189 +==== 3. Open the Upgrade tool (Tremo Programmer) in PC and Upgrade ==== 187 187 188 188 192 +(% 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/]]** 189 189 190 -(% style="color:blue" %)**3. Integration into Node-red via TTNV3** 191 191 195 +[[image:image-20220602103227-6.png]] 192 192 193 -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/]] 194 194 198 +[[image:image-20220602103357-7.png]] 195 195 196 -[[image:image-20220723175700-12.png||height="602" width="995"]] 197 197 198 198 202 +(% class="wikigeneratedid" id="HSelecttheCOMportcorrespondingtoUSBTTL" %) 203 +(% style="color:blue" %)**2. Select the COM port corresponding to USB TTL** 199 199 200 -== 1.8 Example: How to join helium == 201 201 206 +[[image:image-20220602103844-8.png]] 202 202 203 -(% style="color:blue" %)**1. Create a new device.** 204 204 205 205 206 -[[image:image-20220907165500-1.png||height="464" width="940"]] 210 +(% class="wikigeneratedid" id="HSelectthebinfiletoburn" %) 211 +(% style="color:blue" %)**3. Select the bin file to burn** 207 207 208 208 214 +[[image:image-20220602104144-9.png]] 209 209 210 -(% style="color:blue" %)**2. Save the device after filling in the necessary information.** 211 211 217 +[[image:image-20220602104251-10.png]] 212 212 213 -[[image:image-20220907165837-2.png||height="375" width="809"]] 214 214 220 +[[image:image-20220602104402-11.png]] 215 215 216 216 217 -(% style="color:blue" %)**3. Use AT commands.** 218 218 224 +(% class="wikigeneratedid" id="HClicktostartthedownload" %) 225 +(% style="color:blue" %)**4. Click to start the download** 219 219 220 -[[image:image-2022060210 0052-2.png||height="385" width="600"]]227 +[[image:image-20220602104923-13.png]] 221 221 222 222 230 +(% class="wikigeneratedid" id="HThefollowingfigureappearstoprovethattheburningisinprogress" %) 231 +(% style="color:blue" %)**5. Check update process** 223 223 224 -(% style="color:#0000ff" %)**4. Use command AT+CFG to get device configuration** 225 225 234 +[[image:image-20220602104948-14.png]] 226 226 227 -[[image:image-20220907170308-3.png||height="556" width="617"]] 228 228 229 229 238 +(% class="wikigeneratedid" id="HThefollowingpictureappearstoprovethattheburningissuccessful" %) 239 +(% style="color:blue" %)**The following picture shows that the burning is successful** 230 230 231 - (% style="color:blue" %)**5.Network successfully.**241 +[[image:image-20220602105251-15.png]] 232 232 233 233 234 -[[image:image-20220907170436-4.png]] 235 235 245 += 3. LA66 USB LoRaWAN Adapter = 236 236 237 237 238 - (% style="color:blue"%)**6.Senduplinkusing command**248 +== 3.1 Overview == 239 239 250 +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. 240 240 241 -[[image:image-20220912084334-1.png]] 242 242 253 +== 3.2 Features == 243 243 244 -[[image:image-20220912084412-3.png]] 255 +* LoRaWAN USB adapter base on LA66 LoRaWAN module 256 +* Ultra-long RF range 257 +* Support LoRaWAN v1.0.4 protocol 258 +* Support peer-to-peer protocol 259 +* TCXO crystal to ensure RF performance on low temperature 260 +* Spring RF antenna 261 +* Available in different frequency LoRaWAN frequency bands. 262 +* World-wide unique OTAA keys. 263 +* AT Command via UART-TTL interface 264 +* Firmware upgradable via UART interface 245 245 266 +== 3.3 Specification == 246 246 268 +* CPU: 32-bit 48 MHz 269 +* Flash: 256KB 270 +* RAM: 64KB 271 +* Input Power Range: 5v 272 +* Frequency Range: 150 MHz ~~ 960 MHz 273 +* Maximum Power +22 dBm constant RF output 274 +* High sensitivity: -148 dBm 275 +* Temperature: 276 +** Storage: -55 ~~ +125℃ 277 +** Operating: -40 ~~ +85℃ 278 +* Humidity: 279 +** Storage: 5 ~~ 95% (Non-Condensing) 280 +** Operating: 10 ~~ 95% (Non-Condensing) 281 +* LoRa Tx Current: <90 mA at +17 dBm, 108 mA at +22 dBm 282 +* LoRa Rx current: <9 mA 247 247 248 - [[image:image-20220907170744-6.png||height="242"width="798"]]284 +== 3.4 Pin Mapping & LED == 249 249 250 250 251 251 252 -== 1.9UpgradeFirmwareofLA66 LoRaWANShield==288 +== 3.5 Example: Send & Get Messages via LoRaWAN in PC == 253 253 254 254 255 - ===1.9.1Items neededforupdate===291 +Assume user already input the LA66 USB LoRaWAN Adapter OTAA Keys in TTN and there is already TTN network coverage. 256 256 257 257 258 -1. LA66 LoRaWAN Shield 259 -1. Arduino 260 -1. USB TO TTL Adapter 294 +(% style="color:blue" %)**1. Connect the LA66 USB LoRaWAN adapter to PC** 261 261 262 -[[image:image-20220602100052-2.png||height="385" width="600"]] 263 263 297 +[[image:image-20220602171217-1.png||height="538" width="800"]] 264 264 265 265 266 - ===1.9.2Connection===300 +Open the serial port tool 267 267 302 +[[image:image-20220602161617-8.png]] 268 268 269 -[[image:image-202206021 01311-3.png||height="276" width="600"]]304 +[[image:image-20220602161718-9.png||height="457" width="800"]] 270 270 271 271 272 -((( 273 -(% style="color:blue" %)**LA66 LoRaWAN Shield**(%%) **<->** (% style="color:blue" %)**USB TTL** 274 -))) 275 275 276 -((( 277 -(% style="background-color:yellow" %)**GND <-> GND 278 -TXD <-> TXD 279 -RXD <-> RXD** 280 -))) 308 +(% style="color:blue" %)**2. Press the reset switch RST on the LA66 USB LoRaWAN Adapter to reset it.** 281 281 310 +The following picture appears to prove that the LA66 USB LoRaWAN Adapter successfully Join the LoRaWAN network 282 282 283 -Put a jumper cap on JP6 of LA66 LoRaWAN Shield. ( the jumper is to power on LA66 module) 284 284 285 - Connect USB TTL Adapter to PCafter connectingthewires313 +[[image:image-20220602161935-10.png||height="498" width="800"]] 286 286 287 287 288 -[[image:image-20220602102240-4.png||height="304" width="600"]] 289 289 317 +(% style="color:blue" %)**3. See Uplink Command** 290 290 319 +Command format: (% style="color:#4472c4" %)** AT+SENDB=<confirn_status>,<Fport>,<data_len>,<data>** 291 291 292 - === 1.9.3 Upgradesteps===321 +example: AT+SENDB=01,02,8,05820802581ea0a5 293 293 323 +[[image:image-20220602162157-11.png||height="497" width="800"]] 294 294 295 295 296 -==== (% style="color:blue" %)1. Switch SW1 to put in ISP position(%%) ==== 297 297 327 +(% style="color:blue" %)**4. Check to see if TTN received the message** 298 298 299 -[[image:image-202206021 02824-5.png||height="306" width="600"]]329 +[[image:image-20220602162331-12.png||height="420" width="800"]] 300 300 301 301 302 302 333 +== 3.6 Example: Send PC's CPU/RAM usage to TTN via python == 303 303 304 -==== (% style="color:blue" %)2. Press the RST switch once(%%) ==== 305 305 336 +**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]] 306 306 307 -[[image:image-20220817085447-1.png]] 308 308 339 +(% style="color:red" %)**Preconditions:** 309 309 341 +(% style="color:red" %)**1. LA66 USB LoRaWAN Adapter works fine** 310 310 343 +(% style="color:red" %)**2. LA66 USB LoRaWAN Adapter is registered with TTN** 311 311 312 -==== (% style="color:blue" %)3. Open the Upgrade tool (Tremo Programmer) in PC and Upgrade(%%) ==== 313 313 314 314 347 +(% style="color:blue" %)**Steps for usage:** 315 315 316 -((( 317 -(% 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]]** 318 -))) 349 +(% style="color:blue" %)**1.**(%%) Press the reset switch RESET on the LA66 USB LoRaWAN Adapter 319 319 351 +(% style="color:blue" %)**2.**(%%) Run the python script in PC and see the TTN 320 320 321 -[[image:image-202206021 03227-6.png]]353 +[[image:image-20220602115852-3.png||height="450" width="1187"]] 322 322 323 323 324 -[[image:image-20220602103357-7.png]] 325 325 357 +== 3.7 Example: Send & Get Messages via LoRaWAN in RPi == 326 326 327 327 328 -(% class="wikigeneratedid" id="HSelecttheCOMportcorrespondingtoUSBTTL" %) 329 -(% style="color:blue" %)**2. Select the COM port corresponding to USB TTL** 360 +Assume user already input the LA66 USB LoRaWAN Adapter OTAA Keys in TTN and there is already TTN network coverage. 330 330 331 331 332 - [[image:image-20220602103844-8.png]]363 +(% style="color:blue" %)**1. Connect the LA66 USB LoRaWAN Adapter to the Raspberry Pi** 333 333 365 +[[image:image-20220602171233-2.png||height="538" width="800"]] 334 334 335 335 336 -(% class="wikigeneratedid" id="HSelectthebinfiletoburn" %) 337 -(% style="color:blue" %)**3. Select the bin file to burn** 338 338 369 +(% style="color:blue" %)**2. Install Minicom in RPi.** 339 339 340 - [[image:image-20220602104144-9.png]]371 +(% id="cke_bm_509388S" style="display:none" %) (%%)Enter the following command in the RPi terminal 341 341 373 + (% style="background-color:yellow" %)**apt update** 342 342 343 - [[image:image-20220602104251-10.png]]375 + (% style="background-color:yellow" %)**apt install minicom** 344 344 345 345 346 - [[image:image-20220602104402-11.png]]378 +Use minicom to connect to the RPI's terminal 347 347 380 +[[image:image-20220602153146-3.png||height="439" width="500"]] 348 348 349 349 350 -(% class="wikigeneratedid" id="HClicktostartthedownload" %) 351 -(% style="color:blue" %)**4. Click to start the download** 352 352 384 +(% style="color:blue" %)**3. Press the reset switch RST on the LA66 USB LoRaWAN Adapter.**(%%) 385 +(% style="color:blue" %)The following picture appears to prove that the LA66 USB LoRaWAN Adapter successfully entered the network 353 353 354 -[[image:image-202206021 04923-13.png]]387 +[[image:image-20220602154928-5.png||height="436" width="500"]] 355 355 356 356 357 357 358 -(% class="wikigeneratedid" id="HThefollowingfigureappearstoprovethattheburningisinprogress" %) 359 -(% style="color:blue" %)**5. Check update process** 391 +(% style="color:blue" %)**4. Send Uplink message** 360 360 393 +Format: (% style="color:#4472c4" %)**AT+SENDB=<confirn_status>,<Fport>,<data_len>,<data>** 361 361 362 - [[image:image-20220602104948-14.png]]395 +example: AT+SENDB=01,02,8,05820802581ea0a5 363 363 364 364 398 +[[image:image-20220602160339-6.png||height="517" width="600"]] 365 365 366 -(% class="wikigeneratedid" id="HThefollowingpictureappearstoprovethattheburningissuccessful" %) 367 -(% style="color:blue" %)**The following picture shows that the burning is successful** 368 368 369 369 370 - [[image:image-20220602105251-15.png]]402 +Check to see if TTN received the message 371 371 404 +[[image:image-20220602160627-7.png||height="369" width="800"]] 372 372 373 373 374 -= 2. FAQ = 375 375 408 +== 3.8 Example: LA66 USB Module got a message from LA66 LoRa Shield and send the sensor data to NodeRed. == 376 376 377 -== 2.1 How to Compile Source Code for LA66? == 378 378 379 379 380 - CompileandUploadCodeto ASR6601 Platform:[[Instruction>>Main.UserManual forLoRaWAN End Nodes.LA66 LoRaWANModule.Compileand Upload Codeto ASR6601 Platform.WebHome]]412 +== 3.9 Upgrade Firmware of LA66 USB LoRaWAN Adapter == 381 381 382 382 383 -== 2.2 Where to find Peer-to-Peer firmware of LA66? == 384 384 385 385 386 - *[[InstructionforLA66 Peerto Peer firmware>>InstructionforLA66 Peer to Peer firmware]].417 += 4. Order Info = 387 387 388 -= 3. Order Info = 389 389 420 +**Part Number:** (% style="color:blue" %)**LA66-XXX**(%%), (% style="color:blue" %)**LA66-LoRaWAN-Shield-XXX** (%%) **or** (% style="color:blue" %)**LA66-USB-LoRaWAN-Adapter-XXX** 390 390 391 -**Part Number:** (% style="color:blue" %)**LA66-LoRaWAN-Shield-XXX** (%%) 392 392 393 - 394 394 (% style="color:blue" %)**XXX**(%%): The default frequency band 395 395 396 396 * (% style="color:red" %)**AS923**(%%): LoRaWAN AS923 band ... ... @@ -404,9 +404,10 @@ 404 404 * (% style="color:red" %)**PP**(%%): Peer to Peer LoRa Protocol 405 405 406 406 407 -= 4. Reference = 408 408 409 409 410 - *HardwareDesign FileforLA66 LoRaWAN Shield : [[Download>>https://www.dropbox.com/sh/a3wbmdcvqjxaqw5/AADZfvAiykJTK624RgMquH86a?dl=0]]438 += 5. Reference = 411 411 440 +* Hardware Design File for LA66 LoRaWAN Shield, LA66 USB LoRaWAN Adapter : [[Download>>https://www.dropbox.com/sh/a3wbmdcvqjxaqw5/AADZfvAiykJTK624RgMquH86a?dl=0]] 441 + 412 412
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