修改mppt的方式为扰动干扰法
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@ -5,7 +5,7 @@
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<provider copy-of="extension" id="org.eclipse.cdt.ui.UserLanguageSettingsProvider"/>
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<provider copy-of="extension" id="org.eclipse.cdt.ui.UserLanguageSettingsProvider"/>
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<provider-reference id="org.eclipse.cdt.core.ReferencedProjectsLanguageSettingsProvider" ref="shared-provider"/>
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<provider-reference id="org.eclipse.cdt.core.ReferencedProjectsLanguageSettingsProvider" ref="shared-provider"/>
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<provider-reference id="org.eclipse.cdt.managedbuilder.core.MBSLanguageSettingsProvider" ref="shared-provider"/>
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<provider-reference id="org.eclipse.cdt.managedbuilder.core.MBSLanguageSettingsProvider" ref="shared-provider"/>
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<provider class="org.eclipse.cdt.managedbuilder.language.settings.providers.GCCBuiltinSpecsDetector" console="false" env-hash="1033085767641952736" id="ilg.gnumcueclipse.managedbuild.cross.riscv.GCCBuiltinSpecsDetector" keep-relative-paths="false" name="CDT RISC-V Cross GCC Built-in Compiler Settings" parameter="${COMMAND} ${FLAGS} ${cross_toolchain_flags} -E -P -v -dD "${INPUTS}"" prefer-non-shared="true">
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<provider class="org.eclipse.cdt.managedbuilder.language.settings.providers.GCCBuiltinSpecsDetector" console="false" env-hash="742743566734499151" id="ilg.gnumcueclipse.managedbuild.cross.riscv.GCCBuiltinSpecsDetector" keep-relative-paths="false" name="CDT RISC-V Cross GCC Built-in Compiler Settings" parameter="${COMMAND} ${FLAGS} ${cross_toolchain_flags} -E -P -v -dD "${INPUTS}"" prefer-non-shared="true">
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<language-scope id="org.eclipse.cdt.core.gcc"/>
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<language-scope id="org.eclipse.cdt.core.gcc"/>
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<language-scope id="org.eclipse.cdt.core.g++"/>
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<language-scope id="org.eclipse.cdt.core.g++"/>
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</provider>
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</provider>
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@ -20,11 +20,8 @@
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#define ASCII_CHAR_FORM_FEED 0x0C /* '\f' */
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#define ASCII_CHAR_FORM_FEED 0x0C /* '\f' */
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#define ASCII_CHAR_CARRIAGE_RETURN 0x0D /* '\r' */
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#define ASCII_CHAR_CARRIAGE_RETURN 0x0D /* '\r' */
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#define RS485_MAX_PACK_DATA_LEN 30
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#define RS485_MAX_PACK_DATA_LEN 30
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typedef uint32_t device_handle;
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typedef uint32_t device_handle;
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extern device_handle g_bat485_uart3_handle;
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extern device_handle g_bat485_uart3_handle;
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extern device_handle g_gw485_uart4_handle;
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extern device_handle g_gw485_uart4_handle;
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@ -467,7 +467,7 @@ void HY_MsgProcFunc_batteryStatus(device_handle device, void *pMsg, uint32_t Msg
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pack.dischargCurrent = g_otherParameter.Discharg_Current;
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pack.dischargCurrent = g_otherParameter.Discharg_Current;
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pack.chargCurrent1 = g_otherParameter.Charg_Current;
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pack.chargCurrent1 = g_otherParameter.Charg_Current;
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pack.SOC = g_otherParameter.SOC;
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pack.SOC = g_otherParameter.SOC;
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pack.openCircuitVoltage1 = g_otherParameter.Solar_In_Circuit_Voltage;
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pack.openCircuitVoltage1 = g_otherParameter.Solar_Open_Circuit_Voltage;
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if (g_controlParameter.dutyRatio > 0 && g_otherParameter.Charg_Current > 0.05) {
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if (g_controlParameter.dutyRatio > 0 && g_otherParameter.Charg_Current > 0.05) {
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pack.chargSwitchStatus1 = HY_switchON;
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pack.chargSwitchStatus1 = HY_switchON;
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@ -35,6 +35,7 @@ void mppt_constantVoltage(float InVoltage)
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float_t pv1Volt = g_otherParameter.Solar_In_Circuit_Voltage;
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float_t pv1Volt = g_otherParameter.Solar_In_Circuit_Voltage;
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float_t error = pv1Volt - InVoltage;
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float_t error = pv1Volt - InVoltage;
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float_t stepPwm = kp * error + ki * pv1Volt;
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float_t stepPwm = kp * error + ki * pv1Volt;
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g_controlParameter.dutyRatio += stepPwm;
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g_controlParameter.dutyRatio += stepPwm;
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Set_duty_ratio(&g_controlParameter.dutyRatio);
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Set_duty_ratio(&g_controlParameter.dutyRatio);
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@ -61,12 +62,12 @@ void mppt_constantVoltageB(float OutVoltage)
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}
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}
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/**
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/**
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* @brief 恒定输出电压(输出检测端)
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* @brief 恒定输出电压(输出检测端,没有电池时)
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* @param
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* @param
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* @retval
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* @retval
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*
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*
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*/
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*/
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void mppt_constantVoltageO(float OutVoltage)
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void mppt_constantVoltageNoBatteryO(float OutVoltage)
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{
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{
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static float_t kp = 0.005;
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static float_t kp = 0.005;
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static float_t ki = 0.00001;
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static float_t ki = 0.00001;
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@ -80,6 +81,134 @@ void mppt_constantVoltageO(float OutVoltage)
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Set_duty_ratio(&g_controlParameter.dutyRatio);
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Set_duty_ratio(&g_controlParameter.dutyRatio);
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}
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}
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/**
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* @brief 恒定输出电压(输出检测端)
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* @param
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* @retval
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*
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*/
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float_t lastVolt = 0;
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float_t lastStepPwm = 0;
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float_t lastDutyRatio = 0;
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void mppt_constantVoltageO(float OutVoltage)
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{
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static float_t kp = 0.005;
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static float_t ki = 0.00001;
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// static uint8_t flag = 0;
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float_t outVolt = g_otherParameter.Output_Voltage;
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float_t error = OutVoltage - outVolt;
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float_t StepPwm = kp * error + ki * outVolt;
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/* 当有电池时,输出电压的曲线是先上升后下降 */
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if (lastDutyRatio >= g_controlParameter.dutyRatio) {
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// if (lastVolt >= outVolt) {
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g_controlParameter.dutyRatio += StepPwm;
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// } else {
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// g_controlParameter.dutyRatio -= StepPwm;
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// }
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} else {
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// if (lastVolt >= outVolt) {
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// g_controlParameter.dutyRatio -= StepPwm;
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// } else {
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// g_controlParameter.dutyRatio += StepPwm;
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// }
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g_controlParameter.dutyRatio -= StepPwm;
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}
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if (g_otherParameter.overTemperature == 0) {
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} else if (g_otherParameter.overTemperature == 1) {
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g_controlParameter.dutyRatio -= 0.1;
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} else if (g_otherParameter.overTemperature == 2) {
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g_controlParameter.dutyRatio -= 0.2;
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} else if (g_otherParameter.overTemperature == 3) {
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g_controlParameter.dutyRatio -= 0.3;
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}
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lastVolt = outVolt;
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lastStepPwm = StepPwm;
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lastDutyRatio = g_controlParameter.dutyRatio;
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Set_duty_ratio(&g_controlParameter.dutyRatio);
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}
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/**
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* @brief 通过扰动干扰法追踪最大功率点
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* @param
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* @retval
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*
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*/
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float_t lastPower = 0;
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float_t lastSolarInCircuitVoltage = 0;
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void mppt_readJust(void)
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{
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static float_t step1 = 0.01;
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static float_t step2 = 0.005;
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static float_t tempV = 0.1;
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static uint16_t flag = 0;
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flag++;
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if (flag < 600) {
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return;
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}
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flag = 0;
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float_t SolarInCircuitVoltage = get_PV1_VOLT_IN();
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float_t power = g_otherParameter.Output_Voltage * g_otherParameter.Charg_Current;
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float_t voltageDifference = SolarInCircuitVoltage - lastSolarInCircuitVoltage;
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/* 输出电压随占空比增加电压减小 */
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if (power <= lastPower) {
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if (lastSolarInCircuitVoltage <= SolarInCircuitVoltage) {
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if (voltageDifference > tempV) {
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g_controlParameter.dutyRatio += step2;
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} else {
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g_controlParameter.dutyRatio += step1;
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}
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} else {
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if (voltageDifference > tempV) {
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g_controlParameter.dutyRatio -= step2;
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} else {
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g_controlParameter.dutyRatio -= step1;
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}
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}
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} else {
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if (lastSolarInCircuitVoltage <= SolarInCircuitVoltage) {
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if (voltageDifference > tempV) {
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g_controlParameter.dutyRatio -= step2;
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} else {
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g_controlParameter.dutyRatio -= step1;
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}
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} else {
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if (voltageDifference > tempV) {
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g_controlParameter.dutyRatio += step2;
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} else {
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g_controlParameter.dutyRatio += step1;
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}
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}
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}
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lastPower = power;
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lastSolarInCircuitVoltage = SolarInCircuitVoltage;
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/* 过温保护 */
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if (g_otherParameter.overTemperature == 0) {
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} else if (g_otherParameter.overTemperature == 1) {
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g_controlParameter.dutyRatio -= 0.1;
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} else if (g_otherParameter.overTemperature == 2) {
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g_controlParameter.dutyRatio -= 0.2;
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} else if (g_otherParameter.overTemperature == 3) {
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g_controlParameter.dutyRatio -= 0.3;
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}
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Set_duty_ratio(&g_controlParameter.dutyRatio);
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}
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/**
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/**
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* @brief 恒流充电(大电流充电),mppt最大功率充电
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* @brief 恒流充电(大电流充电),mppt最大功率充电
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* @param
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* @param
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@ -88,7 +217,8 @@ void mppt_constantVoltageO(float OutVoltage)
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*/
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*/
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void ConstantCurrentCharge(void)
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void ConstantCurrentCharge(void)
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{
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{
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mppt_constantVoltage(18);
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// mppt_constantVoltage(18);
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mppt_readJust();
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}
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}
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/**
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/**
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@ -150,7 +280,7 @@ void MpptModeChoice(void)
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{
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{
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/* 太阳能板输出电压小于一定值且充电电流也小于一定值时mppt停止工作 */
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/* 太阳能板输出电压小于一定值且充电电流也小于一定值时mppt停止工作 */
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if ((g_otherParameter.Input_Voltage < g_controlParameter.stopSolarOpenCircuitV
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if ((g_otherParameter.Input_Voltage < g_controlParameter.stopSolarOpenCircuitV
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&& g_otherParameter.Charg_Current < 0.05) ){
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&& g_otherParameter.Charg_Current < 0.1) ){
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// && g_otherParameter.MPPT_Mode != NoWork) {
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// && g_otherParameter.MPPT_Mode != NoWork) {
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g_otherParameter.MPPT_Mode = NoWork;
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g_otherParameter.MPPT_Mode = NoWork;
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@ -213,12 +343,25 @@ void MpptContorl(void)
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g_otherParameter.Charg_BatteryCurrent = g_otherParameter.Charg_Current - g_otherParameter.Discharg_Current;
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g_otherParameter.Charg_BatteryCurrent = g_otherParameter.Charg_Current - g_otherParameter.Discharg_Current;
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if (!g_otherParameter.overTemperature) {
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MpptModeChoice();
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MpptModeChoice();
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MpptContorlChoice();
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/* 无电池时,恒压输出 */
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if (!g_otherParameter.batteryState) {
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if (!g_otherParameter.overTemperature) {
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// mppt_constantVoltageNoBatteryO(g_controlParameter.FloatV);
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mppt_constantVoltageO(g_controlParameter.FloatV);
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}
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return;
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}
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}
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// /* 有电池时 */
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// if (!g_otherParameter.overTemperature) {
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// MpptModeChoice();
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// MpptContorlChoice();
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// }
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MpptContorlChoice();
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}
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}
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@ -46,14 +46,10 @@ void Init()
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POW_OUT_CON_Init();
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POW_OUT_CON_Init();
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POW_FF_CON_Init();
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POW_FF_CON_Init();
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DSG_PROT_Init();
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DSG_PROT_Init();
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WORK_VOLT_INT_Init();
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/* 1ms */
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/* 1ms */
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TIM3_Init(10);
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TIM3_Init(10);
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// uart_dev_write(g_gw485_uart4_handle, "1\n", sizeof("1\n"));
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TimeSliceOffset_Register(&m_WdiRunled, Task_WdiRunled, WdiRunled_reloadVal, WdiRunled_offset);
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TimeSliceOffset_Register(&m_WdiRunled, Task_WdiRunled, WdiRunled_reloadVal, WdiRunled_offset);
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TimeSliceOffset_Register(&m_refreshRegister, Task_refreshRegister,
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TimeSliceOffset_Register(&m_refreshRegister, Task_refreshRegister,
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refreshRegister_reloadVal, refreshRegister_offset);
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refreshRegister_reloadVal, refreshRegister_offset);
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@ -96,12 +92,14 @@ void Task_WdiRunled(void)
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NVIC_SystemReset();
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NVIC_SystemReset();
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}
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}
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static uint8_t tempT = 10;
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static uint8_t tempT = 15;
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if (tempT != 0) {
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if (tempT != 0) {
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tempT--;
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tempT--;
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if (tempT == 0) {
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if (tempT == 0) {
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GPIO_WriteBit(POW_OUT_CON_GPIO, POW_OUT_CON_PIN, SET);
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GPIO_WriteBit(POW_OUT_CON_GPIO, POW_OUT_CON_PIN, SET);
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GPIO_WriteBit(POW_FF_CON_GPIO, POW_FF_CON_PIN, SET);
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GPIO_WriteBit(POW_FF_CON_GPIO, POW_FF_CON_PIN, SET);
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Delay_Ms(1);
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WORK_VOLT_INT_Init();
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}
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}
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}
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}
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@ -202,18 +200,17 @@ void Task_refreshRegister(void)
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g_otherParameter.Solar_In_Circuit_Voltage = get_PV1_VOLT_IN();
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g_otherParameter.Solar_In_Circuit_Voltage = get_PV1_VOLT_IN();
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g_otherParameter.HighSideMos_Temperature = get_MOSFET_Temper();
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g_otherParameter.HighSideMos_Temperature = get_MOSFET_Temper();
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if (g_controlParameter.dutyRatio == 0 && g_collectOpenCircuitVoltageFlag == 0) {
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if (g_controlParameter.dutyRatio == 0 && g_otherParameter.batteryState == 0) {
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g_otherParameter.Solar_Open_Circuit_Voltage = get_PV1_VOLT_IN();
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g_otherParameter.Solar_Open_Circuit_Voltage = get_PV1_VOLT_IN();
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}
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}
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g_otherParameter.Charg_BatteryCurrent = g_otherParameter.Charg_Current
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g_otherParameter.Charg_BatteryCurrent = g_otherParameter.Charg_Current
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- g_otherParameter.Discharg_Current;
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- g_otherParameter.Discharg_Current;
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g_otherParameter.totalChargCapacity += totalChargCapacity / 3600000;
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g_otherParameter.totalChargCapacity += totalChargCapacity / 3600000;
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g_otherParameter.totalElectricityConsumption += totalElectricityConsumption / 3600000;
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// saveTotalPower(&g_otherParameter.totalElectricityConsumption, &g_otherParameter.totalChargCapacity);
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totalChargCapacity = 0;
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totalChargCapacity = 0;
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g_otherParameter.totalElectricityConsumption += totalElectricityConsumption / 3600000;
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totalElectricityConsumption = 0;
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totalElectricityConsumption = 0;
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// saveTotalPower(&g_otherParameter.totalElectricityConsumption, &g_otherParameter.totalChargCapacity);
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g_otherParameter.SOC = 0;
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g_otherParameter.SOC = 0;
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@ -339,9 +336,13 @@ void Task_excessiveLoad(void)
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num++;
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num++;
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}
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}
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if (num == 1 && g_otherParameter.excessiveLoadFlag == 1) {
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GPIO_WriteBit(POW_OUT_CON_GPIO, POW_OUT_CON_PIN, SET);
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}
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/* 多次过载则关闭输出 */
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/* 多次过载则关闭输出 */
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if (g_otherParameter.excessiveLoadFlag >= 2) {
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if (g_otherParameter.excessiveLoadFlag >= 2) {
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GPIO_WriteBit(POW_OUT_CON_GPIO, POW_OUT_CON_PIN, RESET);
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// GPIO_WriteBit(POW_OUT_CON_GPIO, POW_OUT_CON_PIN, RESET);
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num = 0;
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num = 0;
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}
|
}
|
||||||
|
|
||||||
|
@ -459,7 +460,7 @@ STR_TimeSliceOffset g_dataJudgment;
|
||||||
void Task_dataJudgment(void)
|
void Task_dataJudgment(void)
|
||||||
{
|
{
|
||||||
/* 判断有无电池 */
|
/* 判断有无电池 */
|
||||||
if (g_otherParameter.batteryState == 0 && (g_otherParameter.Charg_BatteryCurrent > 0.1 || g_otherParameter.Charg_BatteryCurrent < -0.1)
|
if (g_otherParameter.batteryState == 0 && (g_otherParameter.Charg_BatteryCurrent > 1 || g_otherParameter.Charg_BatteryCurrent < -1)
|
||||||
&& g_otherParameter.Output_Voltage < 14.2) {
|
&& g_otherParameter.Output_Voltage < 14.2) {
|
||||||
g_otherParameter.batteryState = 1;
|
g_otherParameter.batteryState = 1;
|
||||||
}
|
}
|
||||||
|
@ -473,8 +474,8 @@ void Task_dataJudgment(void)
|
||||||
}
|
}
|
||||||
|
|
||||||
if (g_otherParameter.overTemperature != 0
|
if (g_otherParameter.overTemperature != 0
|
||||||
&& g_otherParameter.HighSideMos_Temperature < g_controlParameter.HighSideMosTemperature_start + 3) {
|
&& g_otherParameter.HighSideMos_Temperature < g_controlParameter.HighSideMosTemperature_start) {
|
||||||
if (g_otherParameter.overTemperature == 2) {
|
if (g_otherParameter.overTemperature == 3) {
|
||||||
TimeSliceOffset_Register(&m_softStart, Task_softStart, softStart_reloadVal, softStart_offset);
|
TimeSliceOffset_Register(&m_softStart, Task_softStart, softStart_reloadVal, softStart_offset);
|
||||||
}
|
}
|
||||||
g_otherParameter.overTemperature = 0;
|
g_otherParameter.overTemperature = 0;
|
||||||
|
@ -483,15 +484,31 @@ void Task_dataJudgment(void)
|
||||||
|
|
||||||
if (g_otherParameter.overTemperature == 0
|
if (g_otherParameter.overTemperature == 0
|
||||||
&& g_otherParameter.HighSideMos_Temperature < g_controlParameter.HighSideMosTemperature_stop
|
&& g_otherParameter.HighSideMos_Temperature < g_controlParameter.HighSideMosTemperature_stop
|
||||||
&& g_otherParameter.HighSideMos_Temperature > g_controlParameter.HighSideMosTemperature_end + 3) {
|
&& g_otherParameter.HighSideMos_Temperature > g_controlParameter.HighSideMosTemperature_end) {
|
||||||
g_controlParameter.dutyRatio -= 0.15;
|
g_controlParameter.dutyRatio -= 0.05;
|
||||||
Set_duty_ratio(&g_controlParameter.dutyRatio);
|
Set_duty_ratio(&g_controlParameter.dutyRatio);
|
||||||
g_otherParameter.overTemperature = 1;
|
g_otherParameter.overTemperature = 1;
|
||||||
}
|
}
|
||||||
|
|
||||||
if (g_otherParameter.overTemperature != 2
|
if (g_otherParameter.overTemperature == 1
|
||||||
&& g_otherParameter.HighSideMos_Temperature > g_controlParameter.HighSideMosTemperature_stop + 3) {
|
&& g_otherParameter.HighSideMos_Temperature < g_controlParameter.HighSideMosTemperature_stop
|
||||||
|
&& g_otherParameter.HighSideMos_Temperature > g_controlParameter.HighSideMosTemperature_end + 5) {
|
||||||
|
g_controlParameter.dutyRatio -= 0.05;
|
||||||
|
Set_duty_ratio(&g_controlParameter.dutyRatio);
|
||||||
g_otherParameter.overTemperature = 2;
|
g_otherParameter.overTemperature = 2;
|
||||||
|
}
|
||||||
|
|
||||||
|
if (g_otherParameter.overTemperature == 2
|
||||||
|
&& g_otherParameter.HighSideMos_Temperature < g_controlParameter.HighSideMosTemperature_stop
|
||||||
|
&& g_otherParameter.HighSideMos_Temperature > g_controlParameter.HighSideMosTemperature_end + 10) {
|
||||||
|
g_controlParameter.dutyRatio -= 0.05;
|
||||||
|
Set_duty_ratio(&g_controlParameter.dutyRatio);
|
||||||
|
g_otherParameter.overTemperature = 3;
|
||||||
|
}
|
||||||
|
|
||||||
|
if (g_otherParameter.overTemperature != 3
|
||||||
|
&& g_otherParameter.HighSideMos_Temperature > g_controlParameter.HighSideMosTemperature_stop) {
|
||||||
|
g_otherParameter.overTemperature = 3;
|
||||||
TIM_Cmd(TIM3, DISABLE);
|
TIM_Cmd(TIM3, DISABLE);
|
||||||
TIM_SetCompare4(TIM4, 0);
|
TIM_SetCompare4(TIM4, 0);
|
||||||
g_controlParameter.dutyRatio = 0;
|
g_controlParameter.dutyRatio = 0;
|
||||||
|
@ -677,17 +694,18 @@ void Task_collectOpenCircuitVoltage(void)
|
||||||
g_otherParameter.collectOpenCircuitVoltageNUM++;
|
g_otherParameter.collectOpenCircuitVoltageNUM++;
|
||||||
if (g_otherParameter.collectOpenCircuitVoltageNUM == g_controlParameter.collectOpenCircuitVoltageTime) {
|
if (g_otherParameter.collectOpenCircuitVoltageNUM == g_controlParameter.collectOpenCircuitVoltageTime) {
|
||||||
if (g_otherParameter.batteryState) {
|
if (g_otherParameter.batteryState) {
|
||||||
|
g_collectOpenCircuitVoltageFlag = 1;
|
||||||
TIM_Cmd(TIM3, DISABLE);
|
TIM_Cmd(TIM3, DISABLE);
|
||||||
Delay_Ms(1);
|
Delay_Ms(1);
|
||||||
TIM_SetCompare4(TIM4, 0);
|
TIM_SetCompare4(TIM4, 0);
|
||||||
g_controlParameter.dutyRatio = 0;
|
g_controlParameter.dutyRatio = 0;
|
||||||
g_collectOpenCircuitVoltageFlag = 1;
|
|
||||||
g_collectOpenCircuitVoltage.count = 500;
|
g_collectOpenCircuitVoltage.count = 500;
|
||||||
}
|
}
|
||||||
}
|
}
|
||||||
|
|
||||||
if (g_collectOpenCircuitVoltageFlag) {
|
if (g_collectOpenCircuitVoltageFlag) {
|
||||||
g_collectOpenCircuitVoltageFlag = 0;
|
g_collectOpenCircuitVoltageFlag = 0;
|
||||||
|
// printf("1\n");
|
||||||
g_otherParameter.Solar_Open_Circuit_Voltage = get_PV1_VOLT_IN();
|
g_otherParameter.Solar_Open_Circuit_Voltage = get_PV1_VOLT_IN();
|
||||||
TimeSliceOffset_Register(&m_softStart, Task_softStart, softStart_reloadVal, softStart_offset);
|
TimeSliceOffset_Register(&m_softStart, Task_softStart, softStart_reloadVal, softStart_offset);
|
||||||
}
|
}
|
||||||
|
|
|
@ -183,14 +183,21 @@ void EXTI15_10_IRQHandler(void)
|
||||||
// WORK_VOLT_INT_close();
|
// WORK_VOLT_INT_close();
|
||||||
// TimeSliceOffset_Register(&g_overloadDelay, Task_overloadDelay
|
// TimeSliceOffset_Register(&g_overloadDelay, Task_overloadDelay
|
||||||
// , overloadDelay_reloadVal, overloadDelay_offset);
|
// , overloadDelay_reloadVal, overloadDelay_offset);
|
||||||
Delay_Us(10);
|
// Delay_Us(10);
|
||||||
|
// Delay_Ms(1);
|
||||||
// WORK_VOLT_INT_open();
|
// WORK_VOLT_INT_open();
|
||||||
|
GPIO_WriteBit(POW_OUT_CON_GPIO, POW_OUT_CON_PIN, RESET);
|
||||||
EXTI_ClearITPendingBit(EXTI_Line12); //Çå³ýÖжϱê־λ
|
EXTI_ClearITPendingBit(EXTI_Line12); //Çå³ýÖжϱê־λ
|
||||||
if (0 == g_otherParameter.excessiveLoadFlag) {
|
if (0 == g_otherParameter.excessiveLoadFlag) {
|
||||||
TimeSliceOffset_Register(&g_excessiveLoad, Task_excessiveLoad
|
TimeSliceOffset_Register(&g_excessiveLoad, Task_excessiveLoad
|
||||||
, excessiveLoad_reloadVal, excessiveLoad_offset);
|
, excessiveLoad_reloadVal, excessiveLoad_offset);
|
||||||
}
|
}
|
||||||
g_otherParameter.excessiveLoadFlag++;
|
g_otherParameter.excessiveLoadFlag++;
|
||||||
|
|
||||||
|
/* 多次过载则关闭输出 */
|
||||||
|
if (g_otherParameter.excessiveLoadFlag >= 2) {
|
||||||
|
return;
|
||||||
|
}
|
||||||
}
|
}
|
||||||
}
|
}
|
||||||
|
|
||||||
|
|
|
@ -112,8 +112,10 @@ void TIM2_IRQHandler(void)
|
||||||
g_otherParameter.Charg_Current = get_CHG_CURR();
|
g_otherParameter.Charg_Current = get_CHG_CURR();
|
||||||
g_otherParameter.Discharg_Current = get_DSG_CURR();
|
g_otherParameter.Discharg_Current = get_DSG_CURR();
|
||||||
|
|
||||||
totalChargCapacity += g_otherParameter.Charg_Current * g_otherParameter.Output_Voltage;
|
// totalChargCapacity += g_otherParameter.Charg_Current * g_otherParameter.Output_Voltage;
|
||||||
totalElectricityConsumption += g_otherParameter.Discharg_Current * g_otherParameter.Output_Voltage;
|
// totalElectricityConsumption += g_otherParameter.Discharg_Current * g_otherParameter.Output_Voltage;
|
||||||
|
totalChargCapacity += g_otherParameter.Charg_Current;
|
||||||
|
totalElectricityConsumption += g_otherParameter.Discharg_Current;
|
||||||
|
|
||||||
}
|
}
|
||||||
}
|
}
|
||||||
|
|
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25097
obj/mppt_Nos_V0.4.lst
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Reference in New Issue