MPINO-8A8R is a all-in-one industrial Arduino with 8 digital inputs and 8 relay outputs. A single PCB integrates 4 analog inputs, 6 PWM outputs, 2 isolated high-speed counter inputs, 4 interrupt inputs, and RS-232·RS-485·UART·I²C communication.
Program the controller with Arduino IDE (Arduino C/C++) or MPINO STUDIO 2 (Arduino C/C++ & ladder logic).
See the MPINO Series specifications for the board name, connection method, and first I/O numbers for MPINO-8A8R.
| Category | Quantity | Terminal / Item | Specifications |
|---|---|---|---|
| Power | - | Supply voltage | DC 12~24V (0.5A or more when using DC 24V) |
| Digital inputs | 8 points (Solid-state, isolated) | I(22)~I(29) | operating input voltage: DC 0~40V HIGH detection voltage: DC 5V or higher input resistance: 2.2kΩ 8 points/1COM NPN/PNP input support |
| Relay outputs | 8 points (Mechanical contacts, isolated) | R(62)~R(69) | operating connection voltage: DC 0~30V or AC 0~250V maximum allowable output current: 5A/1 points 2 points/1COM × 4 groups |
| Analog inputs | 4 points (Non-isolated) | A(0)~A(3) | Select DC 0~5V, DC 0~10V, DC 0~20mA or NTC 10kΩ(25℃) per channel resolution: 10bit (0~1023) Input resistance: 2kΩ(0~5V), 4kΩ(0~10V), 250Ω(current), 10kΩ pull-up(NTC) |
| High-speed counter inputs | 2 points (Solid-state, isolated) | TCNT1, TCNT5 | operating input voltage: DC 0~80V HIGH detection voltage: DC 3V or higher maximum input frequency: 5kHz Use TIMER1·TIMER5 |
| Interrupt inputs | 4 points (Non-isolated) | PWM2(D2), PWM3(D3) SDA(D20), SCL(D21) | input voltage: DC 0~5V HIGH detection voltage: DC 3V or higher PWM2/PWM3: no pull-up or pull-down SDA/SCL: built-in 4.7kΩ pull-up |
| PWM outputs | 6 points (Non-isolated) | PWM5(D5), PWM2(D2), PWM3(D3) PWM6(D6), PWM7(D7), PWM8(D8) | output voltage: LOW(DC 0V), HIGH(DC 5V) maximum output current: 30mA Built-in 150Ω protection resistor |
| Communication Channels | 1 channel (Non-isolated) | I²C | I²C master/slave supported Use SDA(D20), SCL(D21) |
| RS-232 | Use Serial1 Built-in Modbus RTU Master & Slave commands supported Built-in LS Industrial Systems Cnet commands supported |
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| RS-485 | Use Serial2 Automatic direction control supported Built-in Modbus RTU Master & Slave commands supported Built-in LS Industrial Systems Cnet commands supported |
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| UART | Use Serial3 Built-in Modbus RTU Master & Slave commands supported Built-in LS Industrial Systems Cnet commands supported |
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| Memory | - | Flash | 256KB (including 8KB BootLoader) |
| SRAM | 8KB | ||
| EEPROM | 4KB |
Markdown file: Download MPINO-8A8R.md
See the one-channel digital-input check before wiring for the first time. →
| Group | Terminal | Arduino Pin | Input Configuration | Terminals and Wiring Example |
|---|---|---|---|---|
| COM0 | I(22)~I(29) | D22~D29 | 8 digital inputs, sharing COM0 | |
The digital inputs are isolated by bidirectional optocouplers and accept DC 5~24V NPN or PNP signals. Select the input type through the COM0 wiring polarity.
Use digitalRead() to display the D22~D29 input states every 200ms. HIGH is 1 and LOW is 0.
void setup() { Serial.begin(115200); } void loop() { for (uint8_t pin = 22; pin <= 29; pin++) { Serial.print(F("D")); Serial.print(pin); Serial.print(F(": ")); Serial.println(digitalRead(pin)); } delay(200); }
Related built-in functions
Function prototype
bool IdigitalRead(uint8_t pin, uint8_t samples);
IdigitalRead(22, 5) reads D22 5 times consecutively. Update the state when all readings are HIGH or all are LOW; mixed readings retain the previous state. Unlike a time-based debounce filter, it inserts no delay between readings.
void setup() { Serial.begin(115200); } void loop() { const bool inputOn = IdigitalRead(22, 5); // Read D22 five times consecutively and return the stable state Serial.println(inputOn ? F("D22 ON") : F("D22 OFF")); delay(200); }
Function prototype
bool Ibounce(uint8_t pin, uint32_t debounceTime); bool IbounceOn(uint8_t pin, uint32_t debounceTime); bool IbounceOff(uint8_t pin, uint32_t debounceTime);
Compare three filters on the D22 input. Each returns the filtered ON/OFF state.
Ibounce(22, 30): Apply ON and OFF only after they remain stable for at least 30ms.IbounceOn(22, 500): Delay ON by 500ms; apply OFF immediately.IbounceOff(22, 500): Delay OFF by 500ms; apply ON immediately.Each function operates independently, even on the same pin. Run the filters on every loop() iteration and display only the results at 200ms intervals.
unsigned long lastPrint = 0; void setup() { Serial.begin(115200); } void loop() { const bool stable = Ibounce(22, 30); // Filter D22 ON/OFF chatter over 30ms const bool onDelayed = IbounceOn(22, 500); // Delay only D22 ON by 500ms; apply OFF immediately const bool offDelayed = IbounceOff(22, 500); // Delay only D22 OFF by 500ms; apply ON immediately if (millis() - lastPrint >= 200) { lastPrint = millis(); Serial.print(F("Ibounce: ")); Serial.print(stable); Serial.print(F(", IbounceOn: ")); Serial.print(onDelayed); Serial.print(F(", IbounceOff: ")); Serial.println(offDelayed); } }
Function prototype
void Ialt(bool input, bool &state_var);
Ialt(input, state) inverts state whenever the input changes from OFF to ON. Pressing D22 once turns D62 ON; pressing again turns it OFF. Holding the input retains the state. The example debounces the input with Ibounce(22, 30) before passing it to Ialt(). outputOn is a global variable retained between calls, and Ialt() modifies it directly.
bool outputOn = false; void setup() { Serial.begin(115200); digitalWrite(62, LOW); } void loop() { const bool previous = outputOn; const bool inputOn = Ibounce(22, 30); // Filter D22 ON/OFF chatter over 30ms Ialt(inputOn, outputOn); // Invert outputOn on an OFF→ON input transition digitalWrite(62, outputOn ? HIGH : LOW); if (outputOn != previous) { Serial.println(outputOn ? F("D62 ON") : F("D62 OFF")); } }
See the one-channel relay-output check before wiring for the first time. →
Relay outputs are dry contacts that physically connect each COM terminal to its output terminal. Connect a separate load power supply.
Map inputs D22~D29 to outputs D62~D69 in order. When an input is HIGH, its corresponding output turns ON.
void setup() { for (uint8_t pin = 62; pin <= 69; pin++) digitalWrite(pin, LOW); } void loop() { for (uint8_t ch = 0; ch < 8; ch++) { digitalWrite(62 + ch, digitalRead(22 + ch)); } }
| Selected mode | Input Range | Input resistance | Connector Pinout |
|---|---|---|---|
| Voltage input | DC 0~5V | 2kΩ | |
| Voltage input | DC 0~10V | 4kΩ | |
| Current input | DC 0~20mA | 250Ω | |
| NTC temperature sensor | NTC 10kΩ(25℃), 3950K | 10kΩ pull-up |
For A(0)~A(3), select each input range using the channel jumper position.
Use analogRead() to display the ADC raw values (0~1023) of A0~A3. Each channel's voltage/current mode follows the actual product settings.
const uint8_t analogPins[] = {A0, A1, A2, A3}; void setup() { Serial.begin(115200); } void loop() { for (uint8_t ch = 0; ch < 4; ch++) { Serial.print(F("A")); Serial.print(ch); Serial.print(F(" ADC: ")); Serial.println(analogRead(analogPins[ch])); } delay(500); }
Related built-in functions
Function prototype
int32_t IanalogRead(uint8_t ch, int32_t min, int32_t max); float IanalogReadf(uint8_t ch, float min, float max);
This example assumes A0 is configured for 0~5V input and A2 for 0(4)~20mA input. Both functions scale the ADC input to the specified min~max range. IanalogRead() returns an integer with the fractional part discarded; IanalogReadf() returns a floating-point value. This example displays the 0~5V input on A0 as both 0~100% and voltage. For the 0~20mA input on A2, specify a range of 0~20 to read the actual current.
void setup() { Serial.begin(115200); } void loop() { const int32_t percent = IanalogRead(A0, 0, 100); // Scale A0 to an integer from 0~100% const float voltage = IanalogReadf(A0, 0.0f, 5.0f); // Scale A0 to a floating-point voltage from 0~5V const float current = IanalogReadf(A2, 0.0f, 20.0f); // Scale A2 to a floating-point current from 0~20mA Serial.print(F("A0: ")); Serial.print(percent); Serial.print(F(" %, ")); Serial.print(voltage, 2); Serial.print(F(" V, A2: ")); Serial.print(current, 2); Serial.println(F(" mA")); delay(500); }
Function prototype
int32_t IanalogRead2(uint8_t ch, int32_t min, int32_t max); float IanalogRead2f(uint8_t ch, float min, float max);
This example assumes A0 is configured for 0~5V input and A2 for 0(4)~20mA input. Scale a 4~20mA sensor input connected to A2 to a user-defined range. IanalogRead2(A2, 0, 100) returns an integer with 4mA mapped to 0% and 20mA to 100%. IanalogRead2f(A2, 4.0f, 20.0f) returns the current as a floating-point value. Below approximately 3.6mA, both functions return ANALOG_READ2_ERROR(65535); from approximately 3.6~4mA, they return the specified minimum.
void setup() { Serial.begin(115200); } void loop() { const int32_t percent = IanalogRead2(A2, 0, 100); // Scale A2 4~20mA to an integer from 0~100% const float current = IanalogRead2f(A2, 4.0f, 20.0f); // Convert A2 4~20mA to a floating-point current if (percent == ANALOG_READ2_ERROR || current == (float)ANALOG_READ2_ERROR) { Serial.println(F("A2: 4-20mA input error")); } else { Serial.print(F("A2: ")); Serial.print(percent); Serial.print(F(" %, ")); Serial.print(current, 2); Serial.println(F(" mA")); } delay(500); }
Function prototype
int32_t analogReadAvg(uint8_t ch, uint8_t samples); int32_t analogRead2Avg(uint8_t ch, uint8_t samples);
This example assumes A0 is configured for 0~5V input and A2 for 0(4)~20mA input. analogReadAvg(A0, 5) returns a moving average of the raw A0 ADC readings (0~1023). analogRead2Avg(A2, 5) averages the corrected A2 4~20mA values (4mA=0, 20mA=32767). Each function accumulates up to 5 valid readings from recent calls; it does not take 5 readings in one call. The maximum samples value is 20. analogRead2Avg() returns ANALOG_READ2_AVG_ERROR(-1) for inputs below approximately 3.6mA.
void setup() { Serial.begin(115200); } void loop() { const int32_t voltageAvg = analogReadAvg(A0, 5); // Moving average of up to 5 recent A0 ADC values const int32_t currentAvg = analogRead2Avg(A2, 5); // Moving average of up to 5 recent corrected A2 4~20mA values Serial.print(F("A0 ADC average: ")); Serial.print(voltageAvg); Serial.print(F(", A2 4-20mA average: ")); if (currentAvg == ANALOG_READ2_AVG_ERROR) { Serial.println(F("input error")); } else { Serial.println(currentAvg); } delay(500); }
Run this only on products with A0 configured for NTC input. Use analogRead() to display the temperature-sensor ADC raw value (0~1023) of A0. Celsius conversion is explained in the built-in functions below.
void setup() { Serial.begin(115200); } void loop() { Serial.print(F("A0 ADC: ")); Serial.println(analogRead(A0)); delay(500); }
Related built-in functions
Function prototype
int ntcRead(uint8_t ch); float ntcReadf(uint8_t ch);
Run this only on products with channel A0 configured for NTC input. Read the temperature of the NTC 10kΩ (25℃), B=3950K sensor connected to NTC input A0. ntcRead() returns an integer equal to 10 times the Celsius temperature (25.3℃ → 253); ntcReadf() returns the Celsius temperature as a floating-point value (25.3). Both have a resolution of 0.1℃. Values outside the conversion range are clamped to -40℃ or 120℃, so do not use these values to detect an open or short circuit.
void setup() { Serial.begin(115200); } void loop() { const int temperature10 = ntcRead(A0); // Return A0 temperature as an integer in Celsius ×10 const float temperature = ntcReadf(A0); // Return A0 temperature as floating-point Celsius Serial.print(F("ntcRead: ")); Serial.print(temperature10); Serial.print(F(" (0.1 C), ntcReadf: ")); Serial.print(temperature, 1); Serial.println(F(" C")); delay(500); }
| Function | Terminals / Arduino pins | channel |
|---|---|---|
| Isolated high-speed counter | TCNT1(D79), TCNT5(D47), COM1 | 2 points |
| External interrupts | PWM2(D2), PWM3(D3), SDA(D20), SCL(D21) | 4 points |
| Encoder Inputs | Phase A: SDA(D20), phase B: SCL(D21) | 1 channel |
TCNT1 and TCNT5 are used as external clock inputs for TIMER1·TIMER5. I²C communication cannot be used simultaneously when SDA and SCL are used as encoder inputs.
Count the TCNT1·TCNT5 isolated inputs as external timer clocks. Use rising edges on the MCU timer input; the value wraps to 0 after 65535. Read atomically and display every 500ms.
#include <util/atomic.h> void setup() { Serial.begin(115200); TIMSK1 = 0; TCCR1A = 0; TCCR1B = 0x07; TCNT1 = 0; TIMSK5 = 0; TCCR5A = 0; TCCR5B = 0x07; TCNT5 = 0; } void loop() { uint16_t first, second; ATOMIC_BLOCK(ATOMIC_RESTORESTATE) { first = TCNT1; second = TCNT5; } Serial.print(F("TCNT1: ")); Serial.print(first); Serial.print(F(", TCNT5: ")); Serial.println(second); delay(500); }
Count FALLING edges on SDA(D20). The inputs have 4.7kΩ pull-ups (SDA/SCL). This software interrupt example reads the 32-bit value with ATOMIC_BLOCK and displays it every 500ms. Lossless counting is not guaranteed at the maximum input frequency. Because this uses SDA·SCL, do not run it simultaneously with I²C communication.
static_assert(digitalPinToInterrupt(SDA) != NOT_AN_INTERRUPT, "Invalid interrupt input"); #include <util/atomic.h> volatile uint32_t pulseCount = 0; void countPulse() { pulseCount++; } void setup() { Serial.begin(115200); // SDA is pulled up; count when the external signal pulls it to GND attachInterrupt(digitalPinToInterrupt(SDA), countPulse, FALLING); } void loop() { uint32_t snapshot; ATOMIC_BLOCK(ATOMIC_RESTORESTATE) { snapshot = pulseCount; } Serial.print(F("SDA pulses: ")); Serial.println(snapshot); delay(500); }
Related built-in functions
Function prototype
void TCNTSETUP(uint8_t timerNumber, bool on32bit = false);
Use TCNTSETUP(timerNumber, false) to configure Timer1·Timer5 as 16-bit external-clock counters. Read the accumulated values from the TCNT1·TCNT5 registers. TCNTOUT() returns the overflow count in 32-bit mode, not the accumulated pulse count, so it is not used in this 16-bit example. Do not reconfigure Timer1·Timer5 with other timer functions.
#include <util/atomic.h> void setup() { Serial.begin(115200); TCNTSETUP(1, false); // Configure Timer1 as a 16-bit external pulse counter TCNTSETUP(5, false); // Configure Timer5 as a 16-bit external pulse counter } void loop() { uint16_t first, second; ATOMIC_BLOCK(ATOMIC_RESTORESTATE) { first = TCNT1; second = TCNT5; } Serial.print(F("TCNT1: ")); Serial.print(first); Serial.print(F(", TCNT5: ")); Serial.println(second); delay(500); }
Connect phase A to SDA(D20) and phase B to SCL(D21). This x1 counting example uses a 4.7kΩ pull-up (SDA/SCL) and increments when phase B is LOW at a FALLING edge. The actual rotation direction depends on the phase A/B wiring. Because this uses SDA·SCL, do not run it simultaneously with I²C communication.
static_assert(digitalPinToInterrupt(SDA) != NOT_AN_INTERRUPT, "Invalid interrupt input"); #include <util/atomic.h> #include <stdint.h> volatile int32_t position = 0; void readEncoder() { // Increment if phase B is LOW at the phase A falling edge (x1 decoding) if (digitalRead(SCL) == LOW) { if (position < INT32_MAX) position++; } else { if (position > INT32_MIN) position--; } } void setup() { Serial.begin(115200); // Encoder phase A → SDA(D20), phase B → SCL(D21) attachInterrupt(digitalPinToInterrupt(SDA), readEncoder, FALLING); } void loop() { int32_t snapshot; ATOMIC_BLOCK(ATOMIC_RESTORESTATE) { snapshot = position; } Serial.print(F("Encoder: ")); Serial.println(snapshot); delay(500); }
| Terminal | Arduino Pin | Timers | Connector Pinout |
|---|---|---|---|
| PWM5, PWM2, PWM3 | D5, D2, D3 | TIMER3 | |
| PWM6, PWM7, PWM8 | D6, D7, D8 | TIMER4 |
PWM outputs use an 8bit duty value by default, with an output voltage of DC 0~5V. PWM2 and PWM3 share interrupt-input functions.
Set analogWrite() duty value 128 in the 0~255 range on D5, D2, D3, D6, D7, D8 to output approximately 50% PWM.
void setup() { analogWrite(5, 128); analogWrite(2, 128); analogWrite(3, 128); analogWrite(6, 128); analogWrite(7, 128); analogWrite(8, 128); } void loop() { }
Related built-in functions
Function prototype
void PWM(uint8_t pin, uint16_t val, bool onDutybit16 = false);
PWM(pin, val, onDutybit16) sets the duty value. The 8-bit range is 0~255; with the third argument true, the 16-bit range is 0~65535. Output the 16-bit midpoint value 32768 on D5. D5·D2·D3 share Timer3, and D6·D7·D8 share Timer4; use the same resolution on the same timer. Start after calling PWM_RESET().
void setup() { PWM_RESET(); // Stop PWM timers and reset their modes PWM(5, 32768, true); // Output a midrange 16-bit duty value on D5 } void loop() { }
Function prototype
void FDPWM(uint8_t pin, int32_t intHz, float Duty);
FDPWM(pin, intHz, Duty) specifies the frequency (Hz) and duty cycle (%). Output 1kHz at 50% duty on D5. D5·D2·D3 share Timer3, and D6·D7·D8 share Timer4; specify the same frequency for outputs on the same timer. There is no separate FPWM() function; use FDPWM(pin, hz, 50.0f) for 50% duty output.
void setup() { PWM_RESET(); // Stop PWM timers and reset their modes FDPWM(5, 1000, 50.0f); // Output 1kHz at 50% duty on D5 } void loop() { }
Function prototype
void NPWM_BEGIN(uint8_t pin, uint32_t intHz, float Duty, uint32_t N); void NPWM(uint8_t pin);
Use NPWM_BEGIN() to prepare 100 pulses at 1kHz and 50% duty on D5, then run NPWM() on every loop() iteration to handle output and completion. Do not insert delay(). D5·D2·D3 share Timer3, and D6·D7·D8 share Timer4; do not combine this with other outputs on the same timer.
void setup() { PWM_RESET(); // Stop PWM timers and reset their modes NPWM_BEGIN(5, 1000, 50.0f, 100); // Prepare 100 pulses at 1kHz, 50% duty on D5 } void loop() { NPWM(5); // Process the prepared pulse output and completion }
Function prototype
void PWMOFF(uint8_t pin, bool POff);
PWMOFF(pin, true) sets the channel stop flag; false clears it. Call FDPWM() immediately after setting the flag to apply it to the output connection. Turn D5 on for 2 seconds and off for 2 seconds; after stopping, hold LOW with digitalWrite(). This stop flag does not apply to NPWM().
void setup() { PWM_RESET(); // Stop PWM timers and reset their modes } void loop() { PWMOFF(5, false); // Clear the stop state of D5 FDPWM(5, 1000, 50.0f); // Apply the cleared flag and start 1kHz, 50% output delay(2000); PWMOFF(5, true); // Set the stop state of D5 FDPWM(5, 1000, 50.0f); // Apply the stop flag and disconnect PWM output digitalWrite(5, LOW); delay(2000); }
Function prototype
void PWM_RESET();
PWM_RESET() resets the Timer1·Timer3·Timer4·Timer5 control registers and counters. Output 1kHz on D5 for 2 seconds, then stop all timers. This also affects PWM and counters on the same timer. It does not also clear the PWMOFF() stop flag.
void setup() { PWM_RESET(); // Stop PWM timers and reset their modes FDPWM(5, 1000, 50.0f); // Output 1kHz at 50% duty on D5 delay(2000); PWM_RESET(); // Stop and reset all PWM on Timer1, Timer3, Timer4 and Timer5 digitalWrite(5, LOW); } void loop() { }
Use the MP download cable to upload programs. RS-485 uses automatic direction control, so no separate control pin is needed to switch between transmission and reception.
Forward characters between Serial(115200bps) and RS-232 Serial1(9600bps, 8-N-1). Check the free space in the transmit buffer with availableForWrite(). Serial2 is RS-485 and Serial3 is TTL UART; when using those terminals, replace Serial1 in the example with the corresponding object.
// Serial Monitor via MP download cable ↔ RS-232 Serial1 void setup() { Serial.begin(115200); Serial1.begin(9600); // Also configure the other device for 9600 bps, 8-N-1 } void loop() { if (Serial.available() && Serial1.availableForWrite()) { Serial1.write(Serial.read()); } if (Serial1.available() && Serial.availableForWrite()) { Serial.write(Serial1.read()); } }
Use Wire to scan addresses 0x08~0x77 and display responding addresses every 3 seconds. Do not run this simultaneously with encoder/interrupt examples that use SDA·SCL.
#include <Wire.h> void setup() { Serial.begin(115200); Wire.begin(); Wire.setClock(100000); } void loop() { uint8_t found = 0; for (uint8_t address = 0x08; address <= 0x77; address++) { Wire.beginTransmission(address); const uint8_t result = Wire.endTransmission(); if (result == 0) { Serial.print(F("I2C: 0x")); if (address < 16) Serial.print('0'); Serial.println(address, HEX); found++; } } Serial.print(F("Devices: ")); Serial.println(found); delay(3000); }
Related built-in functions
Function prototype
void ImodbusRTUMem(uint16_t m_size, uint16_t d_size); void ImodbusRTUAdr(uint16_t m_offset, uint16_t d_offset); void ImodbusRTUInit(HardwareSerial& serialPort, uint8_t slaveId, long baudrate); void ImodbusRTU();
Store the D22 state in M[0] and the raw A0 reading (0~1023) in D[0] for the other device to read. Configure RS-232(Serial1), station 1, 9600bps, 8N1. Read M[0] with FC01, start address 0, quantity 1 bit; read D[0] with FC03, start address 0, quantity 1 word. Addresses are zero-based on-wire addresses. Call the communication function on every loop() iteration. This example does not control outputs.
M and D are shared global memory provided by the core. Run this sketch on its own. When combining protocols, do not allocate the shared memory more than once. For RS-485 terminals, replace Serial1 with Serial2; for UART terminals, use Serial3.
unsigned long lastPrint = 0; bool memoryReady = false; void setup() { Serial.begin(115200); ImodbusRTUMem(8, 8); // Allocate 8 M bits and 8 D words ImodbusRTUAdr(0, 0); // Set the M and D communication start addresses to 0 ImodbusRTUInit(Serial1, 1, 9600); // Start RS-232 at station 1, 9600bps memoryReady = (M != nullptr && D != nullptr); if (!memoryReady) Serial.println(F("Memory allocation failed")); } void loop() { if (!memoryReady) return; M[0] = digitalRead(22); D[0] = analogRead(A0); ImodbusRTU(); // Process incoming Modbus RTU requests if (millis() - lastPrint >= 1000) { lastPrint = millis(); Serial.print(F("M[0]: ")); Serial.print(M[0]); Serial.print(F(", D[0]: ")); Serial.println(D[0]); } }
Function prototype
void ImodbusRTUmasterInit(HardwareSerial& serialPort, long baudrate, uint8_t config); uint8_t ImodbusRTUmaster(HardwareSerial& serialPort, uint8_t slaveId, uint8_t functionCode, uint16_t address, uint16_t quantity, uint16_t* data, uint16_t timeoutMs = 100);
Read one holding register from the remote slave over RS-232(Serial1) every 1 second. Configure the other device for station 1, 9600bps, 8N1, FC03, and on-wire start address 0. The response is stored in received[0] and displayed only on success. Error codes are displayed in hexadecimal. This is a separate sketch from the slave example above and uses a receive array instead of M/D memory. For RS-485 terminals, replace Serial1 with Serial2; for UART terminals, use Serial3.
unsigned long lastRequest = 0; uint16_t received[1]; void setup() { Serial.begin(115200); ImodbusRTUmasterInit(Serial1, 9600, SERIAL_8N1); // Start RS-232 as a Modbus master } void loop() { if (millis() - lastRequest < 1000) return; lastRequest = millis(); const uint8_t result = ImodbusRTUmaster(Serial1, 1, 3, 0, 1, received, 200); // Read 1 word at address 0 from station 1, timeout 200ms if (result == IMODBUS_RTU_SUCCESS) { Serial.print(F("Register 0: ")); Serial.println(received[0]); } else { Serial.print(F("Modbus error: 0x")); Serial.println(result, HEX); } }
Related built-in functions
Function prototype
void ICnetMem(uint16_t m_size, uint16_t d_size, uint16_t r_size = 100); void ICnetAdr(uint16_t m_offset, uint16_t d_offset, uint16_t r_offset = 0); void ICnetInit(HardwareSerial& serialPort, uint8_t slaveId, long baudrate); void ICnet();
Store the D22 state in M[0] and the raw A0 reading (0~1023) in D[0] for an HMI to read. Configure the other device for LS Industrial Systems Cnet, RS-232, station 1, 9600bps, 8N1. Read the bit at %MX00000(M[0]) and the word at %DW0(D[0]). Call the communication function on every loop() iteration. This example does not control outputs.
M, D, and R are shared global memory provided by the core; this example does not use R. Run this separately from the Modbus example. When combining protocols, do not allocate the shared memory more than once. For RS-485 terminals, replace Serial1 with Serial2; for UART terminals, use Serial3.
unsigned long lastPrint = 0; bool memoryReady = false; void setup() { Serial.begin(115200); ICnetMem(8, 8, 0); // Allocate 8 M bits and 8 D words; R is unused ICnetAdr(0, 0, 0); // Set the M and D communication start addresses to 0 ICnetInit(Serial1, 1, 9600); // Start RS-232 at station 1, 9600bps memoryReady = (M != nullptr && D != nullptr); if (!memoryReady) Serial.println(F("Memory allocation failed")); } void loop() { if (!memoryReady) return; M[0] = digitalRead(22); D[0] = analogRead(A0); ICnet(); // Process incoming LS Cnet requests if (millis() - lastPrint >= 1000) { lastPrint = millis(); Serial.print(F("M[0]: ")); Serial.print(M[0]); Serial.print(F(", D[0]: ")); Serial.println(D[0]); } }