rusefi/firmware/controllers/algo/engine2.cpp

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/*
* engine2.cpp
*
* @date Jan 5, 2019
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* @author Andrey Belomutskiy, (c) 2012-2020
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*/
// todo: move this code to more proper locations
#include "pch.h"
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#include "speed_density.h"
#include "fuel_math.h"
#include "advance_map.h"
#include "aux_valves.h"
#include "closed_loop_fuel.h"
#include "launch_control.h"
#include "injector_model.h"
#include "tunerstudio.h"
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#if EFI_PROD_CODE
#include "svnversion.h"
#endif
#if ! EFI_UNIT_TEST
#include "status_loop.h"
#endif
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WarningCodeState::WarningCodeState() {
clear();
}
void WarningCodeState::clear() {
warningCounter = 0;
lastErrorCode = 0;
recentWarnings.clear();
}
void WarningCodeState::addWarningCode(obd_code_e code) {
warningCounter++;
lastErrorCode = code;
warning_t* existing = recentWarnings.find(code);
if (!existing) {
chibios_rt::CriticalSectionLocker csl;
// Add the code to the list
existing = recentWarnings.add(warning_t(code));
}
if (existing) {
// Reset the timer on the code to now
existing->LastTriggered.reset();
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}
// Reset the "any warning" timer too
timeSinceLastWarning.reset();
}
/**
* @param forIndicator if we want to retrieving value for TS indicator, this case a minimal period is applued
*/
bool WarningCodeState::isWarningNow() const {
int period = maxI(3, engineConfiguration->warningPeriod);
return !timeSinceLastWarning.hasElapsedSec(period);
}
// Check whether a particular warning is active
bool WarningCodeState::isWarningNow(obd_code_e code) const {
warning_t* warn = recentWarnings.find(code);
// No warning found at all
if (!warn) {
return false;
}
// If the warning is old, it is not active
return !warn->LastTriggered.hasElapsedSec(maxI(3, engineConfiguration->warningPeriod));
}
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void FuelConsumptionState::consumeFuel(float grams, efitick_t nowNt) {
m_consumedGrams += grams;
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float elapsedSecond = m_timer.getElapsedSecondsAndReset(nowNt);
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// If it's been a long time since last injection, ignore this pulse
if (elapsedSecond > 0.2f) {
m_rate = 0;
} else {
m_rate = grams / elapsedSecond;
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}
}
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float FuelConsumptionState::getConsumedGrams() const {
return m_consumedGrams;
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}
float FuelConsumptionState::getConsumptionGramPerSecond() const {
return m_rate;
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}
EngineState::EngineState() {
timeSinceLastTChargeK = getTimeNowNt();
}
void EngineState::updateSlowSensors() {
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}
void EngineState::periodicFastCallback() {
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ScopePerf perf(PE::EngineStatePeriodicFastCallback);
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#if EFI_ENGINE_CONTROL
if (!engine->slowCallBackWasInvoked) {
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warning(CUSTOM_SLOW_NOT_INVOKED, "Slow not invoked yet");
}
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efitick_t nowNt = getTimeNowNt();
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if (engine->rpmCalculator.isCranking()) {
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crankingTimer.reset(nowNt);
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}
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engine->fuelComputer.running.timeSinceCrankingInSecs = crankingTimer.getElapsedSeconds(nowNt);
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recalculateAuxValveTiming();
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int rpm = Sensor::getOrZero(SensorType::Rpm);
engine->ignitionState.sparkDwell = engine->ignitionState.getSparkDwell(rpm);
engine->ignitionState.dwellAngle = cisnan(rpm) ? NAN : engine->ignitionState.sparkDwell / getOneDegreeTimeMs(rpm);
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// todo: move this into slow callback, no reason for IAT corr to be here
engine->fuelComputer.running.intakeTemperatureCoefficient = getIatFuelCorrection();
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// todo: move this into slow callback, no reason for CLT corr to be here
engine->fuelComputer.running.coolantTemperatureCoefficient = getCltFuelCorrection();
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engine->module<DfcoController>()->update();
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// post-cranking fuel enrichment.
// for compatibility reasons, apply only if the factor is greater than unity (only allow adding fuel)
if (engineConfiguration->postCrankingFactor > 1.0f) {
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// use interpolation for correction taper
engine->fuelComputer.running.postCrankingFuelCorrection = interpolateClamped(0.0f, engineConfiguration->postCrankingFactor,
engineConfiguration->postCrankingDurationSec, 1.0f, engine->fuelComputer.running.timeSinceCrankingInSecs);
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} else {
engine->fuelComputer.running.postCrankingFuelCorrection = 1.0f;
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}
engine->ignitionState.cltTimingCorrection = getCltTimingCorrection();
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baroCorrection = getBaroCorrection();
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auto tps = Sensor::get(SensorType::Tps1);
updateTChargeK(rpm, tps.value_or(0));
float injectionMass = getInjectionMass(rpm) * engine->engineState.lua.fuelMult + engine->engineState.lua.fuelAdd;
auto clResult = fuelClosedLoopCorrection();
// Store the pre-wall wetting injection duration for scheduling purposes only, not the actual injection duration
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engine->engineState.injectionDuration = engine->module<InjectorModel>()->getInjectionDuration(injectionMass);
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float fuelLoad = getFuelingLoad();
injectionOffset = getInjectionOffset(rpm, fuelLoad);
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float ignitionLoad = getIgnitionLoad();
float advance = getAdvance(rpm, ignitionLoad) * engine->ignitionState.luaTimingMult + engine->ignitionState.luaTimingAdd;
// compute per-bank fueling
for (size_t i = 0; i < STFT_BANK_COUNT; i++) {
float corr = clResult.banks[i];
engine->stftCorrection[i] = corr;
}
// Now apply that to per-cylinder fueling and timing
for (size_t i = 0; i < engineConfiguration->specs.cylindersCount; i++) {
uint8_t bankIndex = engineConfiguration->cylinderBankSelect[i];
auto bankTrim =engine->stftCorrection[bankIndex];
auto cylinderTrim = getCylinderFuelTrim(i, rpm, fuelLoad);
// Apply both per-bank and per-cylinder trims
engine->engineState.injectionMass[i] = injectionMass * bankTrim * cylinderTrim;
timingAdvance[i] = advance + getCombinedCylinderIgnitionTrim(i, rpm, ignitionLoad);
}
// TODO: calculate me from a table!
trailingSparkAngle = engineConfiguration->trailingSparkAngle;
multispark.count = getMultiSparkCount(rpm);
#if EFI_LAUNCH_CONTROL
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engine->launchController.update();
#endif //EFI_LAUNCH_CONTROL
#if EFI_ANTILAG_SYSTEM
engine->antilagController.update();
#endif //EFI_ANTILAG_SYSTEM
#endif // EFI_ENGINE_CONTROL
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}
void EngineState::updateTChargeK(int rpm, float tps) {
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#if EFI_ENGINE_CONTROL
float newTCharge = engine->fuelComputer.getTCharge(rpm, tps);
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// convert to microsecs and then to seconds
efitick_t curTime = getTimeNowNt();
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float secsPassed = (float)NT2US(curTime - timeSinceLastTChargeK) / US_PER_SECOND_F;
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if (!cisnan(newTCharge)) {
// control the rate of change or just fill with the initial value
sd.tCharge = (sd.tChargeK == 0) ? newTCharge : limitRateOfChange(newTCharge, sd.tCharge, engineConfiguration->tChargeAirIncrLimit, engineConfiguration->tChargeAirDecrLimit, secsPassed);
sd.tChargeK = convertCelsiusToKelvin(sd.tCharge);
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timeSinceLastTChargeK = curTime;
}
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#endif
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}
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#if EFI_SIMULATOR
#define VCS_VERSION "123"
#endif
void TriggerConfiguration::update() {
VerboseTriggerSynchDetails = isVerboseTriggerSynchDetails();
TriggerType = getType();
}
trigger_config_s PrimaryTriggerConfiguration::getType() const {
return engineConfiguration->trigger;
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}
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bool PrimaryTriggerConfiguration::isVerboseTriggerSynchDetails() const {
return engineConfiguration->verboseTriggerSynchDetails;
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}
trigger_config_s VvtTriggerConfiguration::getType() const {
// Convert from VVT type to trigger_config_s
return { getVvtTriggerType(engineConfiguration->vvtMode[index]), 0, 0 };
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}
bool VvtTriggerConfiguration::isVerboseTriggerSynchDetails() const {
return engineConfiguration->verboseVVTDecoding;
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}
bool isLockedFromUser() {
int lock = engineConfiguration->tuneHidingKey;
bool isLocked = lock > 0;
if (isLocked) {
firmwareError(OBD_PCM_Processor_Fault, "password protected");
}
return isLocked;
}
void unlockEcu(int password) {
if (password != engineConfiguration->tuneHidingKey) {
efiPrintf("Nope rebooting...");
#if EFI_PROD_CODE
scheduleReboot();
#endif // EFI_PROD_CODE
} else {
efiPrintf("Unlocked! Burning...");
engineConfiguration->tuneHidingKey = 0;
requestBurn();
}
}