Hierdie tutorialie is deel van: WiFi LoRa 32 Tutoriale
Alle video's wat verband hou met Heltec WiFi LoRa 32 is verwant aan hierdie groep. Skakels na ander video's is onder hierdie artikel.
Beheer 'n Servomotor van kilometers ver weg! Heltec WiFi LoRa 32 V3 Arduino Tutoriaal (TX)
In hierdie gids neem ons die presiese sketse van ons Heltec ESP32 LoRa V3 servo-projek en loop ons deur hoe hulle werk—sonder bykomende kode. Jy sal leer hoe die sender 'n roterende enkodeerder lees, daardie hoek oor LoRa beveilig en stuur, en hoe die ontvanger dit ontsyfer en 'n mikro-servo aandryf. Alle onderdeel- en kodeskakels is hieronder, en as jy deur ons geaffilieerde skakels bestel, help dit ons om hierdie tutoriaals te bly maak.
Installeer Heltec ESP32-borde
Voeg hierdie pad by voorkeure van jou Arduino IDE soos in die video gewys:https://resource.heltec.cn/download/package_heltec_esp32_index.json
1. Sender (TX) hardeware & opstelling
Aan die TX-kant benodig jy:
-
Heltec WiFi LoRa 32 V3-bord (in Meshnology N33-kas, aangedryf deur 3000 mAh-pak)
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Roterende enkodeerder bedraad na GPIO 6 (CLK), GPIO 5 (DT), GPIO 4 (SW)
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OLED-skerm op I²C (SDA= 4, SCL= 15)
Die skets begin deur alles presies in te sluit en te initialiseer soos in Heltec_ESP32_LoRa_V3_Sevo_TX_AiRotaryEncoder.ino:
cppCopyEdit#include "AiEsp32RotaryEncoder.h"
#include "HT_SSD1306Wire.h"
#include "LoRaWan_APP.h"
#include "mbedtls/aes.h"
// …
static SSD1306Wire display(0x3c, 500000, SDA_OLED, SCL_OLED, GEOMETRY, RST_OLED);
AiEsp32RotaryEncoder rotaryEncoder = AiEsp32RotaryEncoder(
PIN_A, PIN_B, SW_PIN, ROTARY_ENCODER_VCC_PIN, false, true, true);
const int homePosition = 90;
const int MAX_ANGLE = 180;
int servoAngel = homePosition;
In setup() doen die kode:
-
Skakel die skerm aan, stel font
-
Roep
rotaryEncoder.begin(),rotaryEncoder.setup(readEncoderISR),rotaryEncoder.setBoundaries(0, MAX_ANGLE, true)enrotaryEncoder.setAcceleration(20) -
Stel enkodeerder terug na
homePosition -
Initialiseer LoRa via
Mcu.begin(HELTEC_BOARD, SLOW_CLK_TPYE)en stelRadioEvents, kanaal en parameters presies soos in die verskafde skets op.
2. Stuur die hoek veilig
Elke lus-siklus voer rotary_loop() uit, wat:
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Die enkodeerder in die ISR lees
-
Wanneer
servoAngelverander, pak dit in 'n 16-byte-buffer, enkripteer met AES-128 (encryptAES()uit die skets), en roepcppCopyEditRadio.Send(data, sizeof(data)); -
Stel
lora_idle = falsetotdatOnTxDone()afgaan en dit terugstel.
3. Ontvanger (RX) hardeware & opstelling
Aan die RX-kant benodig jy:
-
Heltec WiFi LoRa 32 V3-bord (dieselfde kas/battery)
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Mikro-servo (bv. SG90) op GPIO 6 (of enige getoetste PWM-pen)
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OLED-skerm
Die skets in Heltec_ESP32_LoRa_V3_Sevo_RX.ino begin met:
cppCopyEdit#include <ESP32Servo.h>
#include "HT_SSD1306Wire.h"
#include "LoRaWan_APP.h"
#include "mbedtls/aes.h"
// …
const int servoPin = 6;
const int SERVO_DUTY_MIN = 400; // us
const int SERVO_DUTY_MAX = 2400; // us
Servo myservo;
int servoAngel = homePosition;
In setup() doen dit:
-
Skakel Vext aan vir die skerm/LoRa-module (
VextON()) -
Roep
Radio.Init(&RadioEvents)en konfigureer RX met dieselfde LoRa-parameters -
Heg die servo aan met
myservo.attach(servoPin, SERVO_DUTY_MIN, SERVO_DUTY_MAX)en sentreer dit byhomePosition.
4. Ontvang, ontsyfer en dryf die servo aan
Die kern is die OnRxDone(uint8_t *payload, …)-terugroep:
cppCopyEditdecryptAES((uint8_t*)rxpacket, userKey);
if (isNumber(rxpacket)) {
servoAngel = atoi(rxpacket);
myservo.write(servoAngel);
delay(15);
}
Serial.println("Angle: " + String(servoAngel));
lora_idle = true;
Dit ontsyfer die 16-byte-blok, skakel om na 'n heelgetal, en werk die servo onmiddellik by.
5. PWM-penondersteuning & servo-instelling
Ons het hierdie ESP32-penne vir PWM-uitset getoets en hulle werk almal om 'n mikro-servo aan te dryf:
CopyEdit1, 2, 3, 4, 5, 6, 19, 35, 36, 38, 39, 40, 41, 42, 45, 47, 48
Vir 'n standaard SG90 gebruik ons kode 'n polsreeks van 400 µs (0°) tot 2400 µs (180°), wat 'n gladde, volle swaai sonder beweging gee.
6. Bedradingsdiagram
Hieronder is plekhouers waar jy jou TX- en RX-skematiese kan invoeg:


Kode & Affiliate-skakels
Al die bogenoemde sketse is beskikbaar vir aflaai in die “Kode & Hulpbronneâ€-afdeling hieronder. As jy dit self wil bou, oorweeg dit asseblief om jou Heltec LoRa32 V3-module, Meshnology N33-kas, rotasie-enkodeerder en SG90-servo via ons affiliate-skakels te koop. Dit kos jou niks ekstra nie en help ons om aan te hou om gratis tutorials soos hierdie te maak!
Video-hoofstukke vir Verwysing
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00:00 Inleiding & Oorsig
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00:05 Afstandbeheer-konsepte
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00:19 LoRa-kommunikasie-basiese beginsels
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00:23 Hardeware-voorskou
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00:28 Kas & Battery-uitstalling
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01:03 Module-kenmerke
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01:42 Spesifikasies & Konnektiwiteit
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02:54 Aandryf van die Servo
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03:05 Bedrading & Pen-uitleg
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09:35 Antenna-plasing
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11:04 Kas-montering
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29:26 Oplaai van Sketse
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35:09 Reikafstand-toets 1.2 km
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36:38 Reikafstand-toets 1.4 km
-
38:41 Prestasie-opsomming
-
43:04 Gevolgtrekking & Ondersteuning
Hierdie handleiding is deel van: WiFi LoRa 32 Tutoriale
- Gebruik Heltec WiFi LoRa 32 V3 om temperatuur met DHT22 oor 1.4 km oor te dra.
- 13 Myl 20km sonder WiFi? Hoe LoRa spanning oor gekke afstande gestuur het! (Heltec WiFi LoRa 32 V3)
- Skakel 'n Toestel Aan vanaf 13 Myl 21km Weg – Die Ultieme Off-Grid LoRa-projek met WiFi LoRa 32!
- Afgeleide Deurwaarskuwingstelsel vanaf 13 myl 21 km weg Met LoRa – Van die Netwerk af! (Heltec WiFi LoRa 32 V3)
- DIY-afstandbeheerprojek: 13 Myl Geen-Wi-Fi/Geen-SIM Heltec LoRa 32-module
- How to Use the Heltec LoRa CubeCell Development Board HTCC-AB01
/*
File: Heltec_ESP32_LoRa_V3_Sevo_TX_AiRotaryEncoder.ino
written on 24 Jun, 2025 by Ahmad Shamshiri
* =====================================================================
* ARDUINO CODE DESCRIPTION: SECURE LoRa SERVO CONTROL SYSTEM (TX)
* =====================================================================
*
* HARDWARE COMPONENTS:
* -------------------
* - Main Controller: Heltec WiFi LoRa 32 V3
* - Enclosure: Meshnology N33 case with 3000mAh battery
* - Input: Rotary encoder with push-button
* - Feedback: Built-in OLED display
* - Output: Servo motor + LoRa wireless transmission
*
* SYSTEM FUNCTIONALITY:
* -------------------
* [1] ROTARY ENCODER CONTROL:
* - Clockwise/Counter-clockwise rotation adjusts target angle (0°-180°)
* - Real-time angle display on OLED screen
* - Push-button returns servo to Home position (default: 90°)
*
* [2] SECURE WIRELESS TRANSMISSION:
* - All angle values encrypted before LoRa transmission
* - Home position command transmitted as special secure packet
* - Uses 433MHz LoRa band for reliable communication
*
* [3] POWER MANAGEMENT:
* - Optimized for battery operation (3000mAh)
* - Low-power modes between transmissions
*
* FOR COMPLETE SETUP INSTRUCTIONS:
* Please watch the tutorial video at: https://youtu.be/EPynuJ7sasY
* =====================================================================
Watch full video explaination: https://youtu.be/EPynuJ7sasY
Resources page: https://robojax.com/T635
* DISCLAIMER:
* This code is provided "AS IS" without warranty of any kind. The author
* shall not be held liable for any damages arising from the use of this code.
*
* LICENSE:
* This work is licensed under the GNU General Public License v3.0
* Permissions beyond the scope of this license may be available at Robojax.com
*
* SHARING TERMS:
* You are free to share, copy and modify this code for non-commercial purposes
* PROVIDED you:
* 1. Keep this entire comment block intact with the original code
* 2. Include the original Robojax.com link
* 3. Keep the YouTube tutorial link (if applicable)
* 4. Clearly indicate any modifications made
*
* Original tutorial at: https://robojax.com/T635
* YouTube Video: https://youtu.be/EPynuJ7sasY
*
* ********************************************************************
*/
#include <Wire.h>
#include "HT_SSD1306Wire.h"
#include "WiFi.h"
static SSD1306Wire display(0x3c, 500000, SDA_OLED, SCL_OLED, GEOMETRY_128_64, RST_OLED); // addr , freq , i2c group , resolution , rst
const int TX_POWER = 2;//dBm from 2 to 20. when powered via battery 2 to 14dBm is the best option
const int MAX_ANGLE = 180;//the most common is 180, but you can set it as needed
String labelAngle = "Angle";
const int homePosition = 90; //initial position
//endcoder
const int SW_PIN = 4;//define a pin for rotary encode switch
const int PIN_A = 6;
const int PIN_B = 5;//
const int ANGLE_STEP = 6;//
const bool debug= false;//to print debug data in serial moinitor set it to true, else false
int servoAngel = homePosition;
int oldAngleValue = servoAngel;
#include "mbedtls/aes.h"//for securing data
#include <cstring> // For memset, memcpy
mbedtls_aes_context aes;
const char *userKey = "hyhT676#h~_1a"; //Security key.
#include "LoRaWan_APP.h"
#include "AiEsp32RotaryEncoder.h"
#include "Arduino.h"
#define ROTARY_ENCODER_VCC_PIN -1
//instead of changing here, rather change numbers above
AiEsp32RotaryEncoder rotaryEncoder = AiEsp32RotaryEncoder(
PIN_A,
PIN_B,
SW_PIN,
ROTARY_ENCODER_VCC_PIN,
ANGLE_STEP);
#define RF_FREQUENCY 915432000 // Hz
#define TX_OUTPUT_POWER TX_POWER // dBm from 2 to 20. when powered via battery 2 to 14dBm
#define LORA_BANDWIDTH 0 // [0: 125 kHz,
// 1: 250 kHz,
// 2: 500 kHz,
// 3: Reserved]
#define LORA_SPREADING_FACTOR 7 // [SF7..SF12]
#define LORA_CODINGRATE 1 // [1: 4/5,
// 2: 4/6,
// 3: 4/7,
// 4: 4/8]
#define LORA_PREAMBLE_LENGTH 8 // Same for Tx and Rx
#define LORA_SYMBOL_TIMEOUT 0 // Symbols
#define LORA_FIX_LENGTH_PAYLOAD_ON false
#define LORA_IQ_INVERSION_ON false
#define RX_TIMEOUT_VALUE 1000
#define BUFFER_SIZE 64 // Define the payload size here
char txpacket[BUFFER_SIZE];
char rxpacket[BUFFER_SIZE];
double txNumber;
bool lora_idle=true;
static RadioEvents_t RadioEvents;
unsigned long lastTxTime = 0;
void OnTxDone( void );
void OnTxTimeout( void );
void decryptAES(uint8_t *data, const char *key);
void encryptAES(uint8_t *data, const char *key);
void processKey(const char *userKey, uint8_t *processedKey, size_t keySize);
void VextON(void);
void rotary_loop();//prototyp function: rotary encoder
void IRAM_ATTR readEncoderISR();//prototyp function: rotary encoder
void rotary_onButtonClick();//prototyp function: rotary encoder
void setup() {
Serial.begin(115200);
Serial.println();
VextON();
delay(100);
//we must initialize rotary encoder
rotaryEncoder.begin();
rotaryEncoder.setup(readEncoderISR);
bool circleValues = false;
rotaryEncoder.setBoundaries(0, MAX_ANGLE, circleValues); //minValue, maxValue, circleValues true|false (when max go to min and vice versa)
/*Rotary acceleration introduced 25.2.2021.
* in case range to select is huge, for example - select a value between 0 and 1000 and we want 785
* without accelerateion you need long time to get to that number
* Using acceleration, faster you turn, faster will the value raise.
* For fine tuning slow down.
*/
//rotaryEncoder.disableAcceleration(); //acceleration is now enabled by default - disable if you dont need it
rotaryEncoder.setAcceleration(20); //or set the value - larger number = more accelearation; 0 or 1 means disabled acceleration
rotaryEncoder.reset(homePosition); //set home position
// Initialising the UI will init the display too.
display.init();
display.setFont(ArialMT_Plain_10);
//LoRa stuff
Mcu.begin(HELTEC_BOARD,SLOW_CLK_TPYE);
txNumber=0;
RadioEvents.TxDone = OnTxDone;
RadioEvents.TxTimeout = OnTxTimeout;
Radio.Init( &RadioEvents );
Radio.SetChannel( RF_FREQUENCY );
Radio.SetTxConfig( MODEM_LORA, TX_OUTPUT_POWER, 0, LORA_BANDWIDTH,
LORA_SPREADING_FACTOR, LORA_CODINGRATE,
LORA_PREAMBLE_LENGTH, LORA_FIX_LENGTH_PAYLOAD_ON,
true, 0, 0, LORA_IQ_INVERSION_ON, 3000 );
}
void displayAngle() {
display.clear(); // Clear display before new content
// Line 1: Text: Angle
display.setTextAlignment(TEXT_ALIGN_LEFT);
// Line 2: Temperature value in 24pt font
display.setFont(ArialMT_Plain_24);
// Format
String angleString = String(servoAngel) + "°"; //
display.setFont(ArialMT_Plain_16);
display.drawString(0, 0, labelAngle);
display.setFont(ArialMT_Plain_24);
display.drawString(0, 15, angleString);
display.display(); // Update OLED
}
void VextON(void)
{
pinMode(Vext,OUTPUT);
digitalWrite(Vext, LOW);
}
void VextOFF(void) //Vext default OFF
{
pinMode(Vext,OUTPUT);
digitalWrite(Vext, HIGH);
}
void sendData()
{
String txData = String(servoAngel) ;
uint8_t data[BUFFER_SIZE];
memset(data, 0, sizeof(data)); // Zero-padding
strncpy((char*)data, txData.c_str(), sizeof(data) - 1); // Copy string safely
encryptAES(data, userKey); // Encrypt before sending
if(lora_idle == true)
{
//delay(1000);
Radio.Send(data, sizeof(data));
if(debug){
Serial.print("Sending: ");
Serial.println((char *)data);
}
lora_idle = false;
oldAngleValue =servoAngel;//keep record of angle change
}
Radio.IrqProcess( );
}
void loop() {
rotary_loop();
// clear the display
display.clear();
displayAngle(); //
if(oldAngleValue != servoAngel)
{
sendData();
}
//delay(100);
}
void OnTxDone( void )
{
if(debug){
Serial.println("TX done......");
}
lora_idle = true;
}
void OnTxTimeout( void )
{
Radio.Sleep( );
if(debug){
Serial.println("TX Timeout......");
}
lora_idle = true;
}
/**
* Converts a user-provided plaintext key into a fixed-length 16-byte (128-bit)
* or 32-byte (256-bit) key.
*/
void processKey(const char *userKey, uint8_t *processedKey, size_t keySize) {
memset(processedKey, 0, keySize); // Fill with zeros
size_t len = strlen(userKey);
if (len > keySize) len = keySize; // Truncate if too long
memcpy(processedKey, userKey, len); // Copy valid key part
}
/**
* Encrypts a 16-byte (one block) message using AES-128.
*/
void encryptAES(uint8_t *data, const char *key) {
uint8_t processedKey[16]; // 128-bit key
processKey(key, processedKey, 16);
mbedtls_aes_init(&aes);
mbedtls_aes_setkey_enc(&aes, processedKey, 128);
mbedtls_aes_crypt_ecb(&aes, MBEDTLS_AES_ENCRYPT, data, data);
mbedtls_aes_free(&aes);
}
/**
* Decrypts a 16-byte (one block) message using AES-128.
*/
void decryptAES(uint8_t *data, const char *key) {
uint8_t processedKey[16]; // 128-bit key
processKey(key, processedKey, 16);
mbedtls_aes_init(&aes);
mbedtls_aes_setkey_dec(&aes, processedKey, 128);
mbedtls_aes_crypt_ecb(&aes, MBEDTLS_AES_DECRYPT, data, data);
mbedtls_aes_free(&aes);
}
void rotary_onButtonClick()
{
static unsigned long lastTimePressed = 0;
//ignore multiple press in that time milliseconds
if (millis() - lastTimePressed < 500)
{
return;
}
lastTimePressed = millis();
if(debug){
Serial.print("button pressed ");
Serial.print(millis());
Serial.println(" milliseconds after restart");
}
}
void rotary_loop()
{
//dont print anything unless value changed
if (rotaryEncoder.encoderChanged())
{
if(debug){
Serial.print("Value: ");
Serial.println(rotaryEncoder.readEncoder());
}
servoAngel = rotaryEncoder.readEncoder();
}
if (rotaryEncoder.isEncoderButtonClicked())
{
rotaryEncoder.reset(homePosition);
servoAngel = homePosition;
rotary_onButtonClick();
}
}
void IRAM_ATTR readEncoderISR()
{
rotaryEncoder.readEncoder_ISR();
}
Common Course Links
Common Course Files
Hulpbronne en verwysings
-
BuitenburgHeltec WiFi Kit 32 website linkheltec.org
-
Buitenburg
-
BuitenburgPurchase a WiFi LoRa 32 V3 from AliExpresss.click.aliexpress.com
-
BuitenburgPurchase a WiFi LoRa 32 V3 from AliExpress-2s.click.aliexpress.com
-
Buitenburg
Lêers📁
Arduino Biblioteke (zip)
-
Robojax_HeltecLoRa32V3
Robojax_HeltecLoRa32V3.zip0.09 MB