mirror of https://github.com/arendst/Tasmota.git
Add flow rate value source type
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@ -225,7 +225,6 @@
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#define D_JSON_RESETTABLE_TOTAL_ACTIVE "ResetTotalActive"
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#define D_JSON_SIGNALSTRENGTH "SignalStrength"
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#define D_JSON_CHIPTEMPERATURE "ChipTemperature"
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#define D_JSON_FLOW_UNIT "FLowUnit"
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#define D_RSLT_ENERGY "ENERGY"
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#define D_RSLT_HASS_STATE "HASS_STATE"
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@ -2,6 +2,7 @@
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xsns_96_flowmeter.ino - flowmeter support for Tasmota
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Up to two flowmeter YF-DN50 and similary supported
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(f = 1 Hz up to 5 kHz)
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Uses the FreqRes resolution
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Copyright (C) 2022 Norbert Richter
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@ -21,17 +22,22 @@
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#ifdef USE_FLOWMETER
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// The Arduino standard GPIO routines are not enough,
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// must use some from the Espressif SDK as well
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// extern "C" {
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// #include "gpio.h"
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// }
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#define XSNS_96 96
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#define FLOWMETER_WEIGHT_AVG_SAMPLE 20 // samples
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#define FLOWMETER_MIN_FREQ 1 // Hz
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// The Arduino standard GPIO routines are not enough,
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// must use some from the Espressif SDK as well
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extern "C" {
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#include "gpio.h"
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}
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#define D_JSON_FLOWMETER_RATE "Rate"
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#define D_JSON_FLOWMETER_VALUE "Value"
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#define D_JSON_FLOWMETER_UNIT "Unit"
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#define D_JSON_FLOWMETER_VALUE_AVG "average"
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#define D_JSON_FLOWMETER_VALUE_RAW "raw"
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#ifdef USE_WEBSERVER
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const char HTTP_SNS_FLOWMETER[] PROGMEM =
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@ -46,7 +52,7 @@ uint32_t flowmeter_count[MAX_FLOWMETER] = {0};
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volatile uint32_t flowmeter_last_irq[MAX_FLOWMETER] = {0};
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bool flowmeter_valuesread = false;
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bool flowmeter_raw_value = false;
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void IRAM_ATTR FlowMeterIR(uint16_t irq)
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{
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@ -63,7 +69,7 @@ void IRAM_ATTR FlowMeterIR(uint16_t irq)
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flowmeter_last_irq[irq] = time;
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}
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}
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// GPIO_STATUS is always 0 (?), so can only determine the IR source using this way:
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// GPIO_STATUS is always 0 (?), so can only determine the IR source using this way
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void IRAM_ATTR FlowMeter1IR(void)
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{
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FlowMeterIR(0);
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@ -103,20 +109,27 @@ void FlowMeterInit(void)
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void FlowMeterShow(bool json)
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{
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if (json) {
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ResponseAppend_P(PSTR(",\"" D_FLOWMETER_NAME "\":{\"" D_JSON_FLOWMETER_RATE "\":["));
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}
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for (uint32_t i = 0; i < MAX_FLOWMETER; i++) {
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float flowmeter_rate_avg_float = 0;
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if (flowmeter_period[i]) {
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flowmeter_rate_avg_float =
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((Settings->SensorBits1.flowmeter_unit ? (1000000.0 / 1000.0) : (1000000 / 60.0)) / 2.0) / flowmeter_period_avg[i] * (Settings->flowmeter_calibration[i] ? (float)Settings->flowmeter_calibration[i] : 1000.0);
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((Settings->SensorBits1.flowmeter_unit ? (1000000.0 / 1000.0) : (1000000 / 60.0)) / 2.0)
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/ (flowmeter_raw_value ? flowmeter_period[i] : flowmeter_period_avg[i])
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* (Settings->flowmeter_calibration[i] ? (float)Settings->flowmeter_calibration[i] : 1000.0);
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}
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if (PinUsed(GPIO_FLOWMETER_IN, i)) {
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if (json) {
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ResponseAppend_P(PSTR(",\"" D_FLOWMETER_NAME "-%d\":{\"" D_JSON_FLOWRATE "\":%*_f}"),
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i+1,
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ResponseAppend_P(PSTR("%s%*_f"),
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i ? PSTR(",") : PSTR(""),
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Settings->flag2.frequency_resolution, &flowmeter_rate_avg_float
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);
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#ifdef USE_WEBSERVER
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} else {
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WSContentSend_PD(HTTP_SNS_FLOWMETER,
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@ -125,11 +138,15 @@ void FlowMeterShow(bool json)
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Settings->SensorBits1.flowmeter_unit ? D_UNIT_CUBICMETER_PER_HOUR : D_UNIT_LITER_PER_MINUTE
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);
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#endif // USE_WEBSERVER
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}
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}
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}
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if (json) {
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ResponseAppend_P(PSTR(",\"" D_JSON_FLOW_UNIT "\":\"%s\""),
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ResponseAppend_P(PSTR("],\"" D_JSON_FLOWMETER_VALUE "\":\"%s\""),
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flowmeter_raw_value ? PSTR(D_JSON_FLOWMETER_VALUE_RAW) : PSTR(D_JSON_FLOWMETER_VALUE_AVG)
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);
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ResponseAppend_P(PSTR(",\"" D_JSON_FLOWMETER_UNIT "\":\"%s\"}"),
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Settings->SensorBits1.flowmeter_unit ? D_UNIT_CUBICMETER_PER_HOUR : D_UNIT_LITER_PER_MINUTE
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);
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}
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@ -144,6 +161,7 @@ void FlowMeterShow(bool json)
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* Sensor96 0 0|1 - Show flow value in l/min (0) or m³/h (1)
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* Sensor96 1 <correction-factor> - Set sensor 1 factor (x 1000) - to set to 0.2 enter 'Sensor96 1 200'
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* Sensor96 2 <correction-factor> - Set sensor 2 factor (x 1000)
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* Sensor96 9 0|1 - Value mode: Switch between displaying avg(0) / raw(1) readings (not permanently)
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*
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* Flowmeter calibration:
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* - get the current displayed flow rate (D)
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@ -189,15 +207,25 @@ bool FlowMeterCommand(void) {
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show_parms = false;
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}
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break;
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case 9: // avg/raw values
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if (any_value) {
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flowmeter_raw_value = value & 1;
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ResponseCmndNumber(value & 1);
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show_parms = false;
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}
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break;
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}
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if (show_parms) {
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Response_P(PSTR("{\"Sensor%d\":{"), XSNS_96);
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Response_P(PSTR("{\"Sensor%d\":{\"" D_JSON_POWERFACTOR "\":["), XSNS_96);
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for (uint32_t i = 0; i < MAX_FLOWMETER; i++) {
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float flowmeter_factor = Settings->flowmeter_calibration[i] ? (float)Settings->flowmeter_calibration[i] / 1000 : 1.0;
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ResponseAppend_P(PSTR("\"" D_JSON_POWERFACTOR "-%d\":%3_f,"), i+1, &flowmeter_factor);
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float flowmeter_factor = Settings->flowmeter_calibration[i] ? (float)Settings->flowmeter_calibration[i] / 1000 : 1;
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ResponseAppend_P(PSTR("%s%3_f"), i ? PSTR(",") : PSTR(""), &flowmeter_factor);
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}
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ResponseAppend_P(PSTR("\"" D_JSON_FLOW_UNIT "\":\"%s\"}}"),
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ResponseAppend_P(PSTR("],\"" D_JSON_FLOWMETER_VALUE "\":\"%s\""),
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flowmeter_raw_value ? PSTR(D_JSON_FLOWMETER_VALUE_RAW) : PSTR(D_JSON_FLOWMETER_VALUE_AVG)
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);
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ResponseAppend_P(PSTR(",\"" D_JSON_FLOWMETER_UNIT "\":\"%s\"}}"),
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Settings->SensorBits1.flowmeter_unit ? D_UNIT_CUBICMETER_PER_HOUR : D_UNIT_LITER_PER_MINUTE
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);
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}
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