MQSensorsLib/src/MQUnifiedsensor.cpp

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#include "MQUnifiedsensor.h"
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MQUnifiedsensor::MQUnifiedsensor(String Placa, double Voltage_Resolution, int ADC_Bit_Resolution, int pin, String type) {
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this->_pin = pin;
this->_type = type; //MQ-2, MQ-3 ... MQ-309A
this->_placa = Placa;
this-> _VOLT_RESOLUTION = Voltage_Resolution;
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this-> _ADC_Bit_Resolution = ADC_Bit_Resolution;
}
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void MQUnifiedsensor::init()
{
pinMode(_pin, INPUT);
}
void MQUnifiedsensor::setA(double a) {
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this->_a = a;
}
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void MQUnifiedsensor::setB(double b) {
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this->_b = b;
}
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void MQUnifiedsensor::setR0(double R0) {
this->_R0 = R0;
}
void MQUnifiedsensor::setRL(double RL) {
this->_RL = RL;
}
void MQUnifiedsensor::setVoltResolution(double voltage_resolution)
{
_VOLT_RESOLUTION = voltage_resolution;
}
void MQUnifiedsensor::setRegressionMethod(String regressionMethod)
{
this->_regressionMethod = regressionMethod;
}
double MQUnifiedsensor::getR0() {
return _R0;
}
double MQUnifiedsensor::getRL() {
return _RL;
}
void MQUnifiedsensor::serialDebug(bool onSetup)
{
if(onSetup)
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{
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Serial.println();
Serial.println("************************************************************************************************************************************************");
Serial.println("MQ sensor reading library for arduino");
Serial.println("Note: remember that all the parameters below can be modified during the program execution with the methods:");
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Serial.println("setR0, setRL, setA, setB where you will have to send as parameter the new value, example: mySensor.setR0(20); //R0 = 20KΩ");
Serial.println("Authors: Miguel A. Califa U - Yersson R. Carrillo A - Ghiordy F. Contreras C");
Serial.println("Contributors: Andres A. Martinez - Juan A. Rodríguez - Mario A. Rodríguez O ");
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Serial.println("Sensor: " + _type);
Serial.print("Supply voltage: "); Serial.print(_VOLT_RESOLUTION); Serial.println(" VDC");
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Serial.print("ADC Resolution: "); Serial.print(_ADC_Bit_Resolution); Serial.println(" Bits");
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Serial.print("R0: "); Serial.print(_R0); Serial.println("");
Serial.print("RL: "); Serial.print(_RL); Serial.println("");
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Serial.print("Model: "); if(_regressionMethod == "Exponential") Serial.println("Exponential"); else Serial.println("Linear");
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Serial.print(_type + " -> " + "a: "); Serial.print(_a); Serial.print(" | b: "); Serial.println(_b);
Serial.println("Development board: " + _placa);
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}
else
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{
if(!_firstFlag)
{
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Serial.println("| ********************************************************************" + _type + "*********************************************************************|");
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Serial.println("|ADC_In | Equation_V_ADC | Voltage_ADC | Equation_RS | Resistance_RS | EQ_Ratio | Ratio (RS/R0) | Equation_PPM | PPM |");
_firstFlag = true; //Headers are printed
}
else
{
String eq = "";
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if(_regressionMethod == "Linear") eq = "ratio*a + b";
if(_regressionMethod == "Exponential") eq = "a*ratio^b";
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Serial.print("|"); Serial.print(_adc); Serial.print("| v = ADC*"); Serial.print(_VOLT_RESOLUTION); Serial.print("/"); Serial.print(pow(2, _ADC_Bit_Resolution)); Serial.print(" | "); Serial.print(_sensor_volt);
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Serial.print(" | RS = ((" ); Serial.print(_VOLT_RESOLUTION ); Serial.print("*RL)/Voltage) - RL| "); Serial.print(_RS_Calc); Serial.print(" | Ratio = RS/R0| ");
Serial.print(_ratio); Serial.print( " | " + eq + " | "); Serial.print(_PPM); Serial.println(" |");
}
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}
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}
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void MQUnifiedsensor::update()
{
_sensor_volt = this->getVoltage();
}
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float MQUnifiedsensor::calculatePPM(double ratio)
{
if(_regressionMethod == "Exponential") _PPM= _a*pow(ratio, _b);
if(_regressionMethod == "Linear") _PPM= _a*ratio + _b;
return _PPM;
}
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float MQUnifiedsensor::readSensor()
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{
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//More explained in: https://jayconsystems.com/blog/understanding-a-gas-sensor
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_RS_Calc = ((_VOLT_RESOLUTION*_RL)/_sensor_volt)-_RL; //Get value of RS in a gas
if(_RS_Calc < 0) _RS_Calc = 0; //No negative values accepted.
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_ratio = _RS_Calc / this->_R0; // Get ratio RS_gas/RS_air
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if(_ratio <= 0) _ratio = 0; //No negative values accepted or upper datasheet recomendation.
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if(_regressionMethod == "Exponential") _PPM= _a*pow(_ratio, _b);
if(_regressionMethod == "Linear") _PPM= _a*_ratio + _b;
if(_PPM < 0) _PPM = 0; //No negative values accepted or upper datasheet recomendation.
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//if(_PPM > 10000) _PPM = 99999999; //No negative values accepted or upper datasheet recomendation.
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return _PPM;
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}
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float MQUnifiedsensor::calibrate(float ratioInCleanAir) {
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//More explained in: https://jayconsystems.com/blog/understanding-a-gas-sensor
/*
V = I x R
VRL = [VC / (RS + RL)] x RL
VRL = (VC x RL) / (RS + RL)
Así que ahora resolvemos para RS:
VRL x (RS + RL) = VC x RL
(VRL x RS) + (VRL x RL) = VC x RL
(VRL x RS) = (VC x RL) - (VRL x RL)
RS = [(VC x RL) - (VRL x RL)] / VRL
RS = [(VC x RL) / VRL] - RL
*/
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float RS_air; //Define variable for sensor resistance
float R0; //Define variable for R0
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RS_air = ((_VOLT_RESOLUTION*_RL)/_sensor_volt)-_RL; //Calculate RS in fresh air
if(RS_air < 0) RS_air = 0; //No negative values accepted.
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R0 = RS_air/ratioInCleanAir; //Calculate R0
if(R0 < 0) R0 = 0; //No negative values accepted.
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return R0;
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}
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double MQUnifiedsensor::getVoltage(int read) {
double voltage;
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if(read)
{
double avg = 0.0;
for (int i = 0; i < retries; i ++) {
_adc = analogRead(this->_pin);
avg += _adc;
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delay(retry_interval);
}
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voltage = (avg/ retries) * _VOLT_RESOLUTION / (pow(2, ADC_RESOLUTION) - 1);
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}
else
{
voltage = _sensor_volt;
}
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return voltage;
}
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double MQUnifiedsensor::stringToDouble(String & str)
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{
return atof( str.c_str() );
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}