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This project is distributed in the hope that * it will be useful, but WITHOUT ANY WARRANTY; without even the implied * warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU * Lesser General Public License for more details. * * You should have received a copy of the GNU Lesser General Public License * along with this project. If not, see . * * For any further details and any questions please contact us under * contact@nymea.io or see our FAQ/Licensing Information on * https://nymea.io/license/faq * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * */ #include "sunspecinverter.h" #include "extern-plugininfo.h" #include SunSpecInverter::SunSpecInverter(SunSpec *sunspec, SunSpec::BlockId mapId, int modbusAddress) : QObject(sunspec), m_connection(sunspec), m_id(mapId), m_mapModbusStartRegister(modbusAddress) { qCDebug(dcSunSpec()) << "SunSpecInverter: Setting up inverter"; connect(m_connection, &SunSpec::mapReceived, this, &SunSpecInverter::onModbusMapReceived); } SunSpec::BlockId SunSpecInverter::blockId() { return m_id; } void SunSpecInverter::init() { qCDebug(dcSunSpec()) << "SunSpecInverter: Init"; m_connection->readMapHeader(m_mapModbusStartRegister); connect(m_connection, &SunSpec::mapHeaderReceived, this, [this] (uint modbusAddress, SunSpec::BlockId mapId, uint mapLength) { qCDebug(dcSunSpec()) << "SunSpecInverter: Map Header received, modbus address:" << modbusAddress << "map Id:" << mapId << "map length:" << mapLength; m_mapLength = mapLength; emit initFinished(true); m_initFinishedSuccess = true; }); QTimer::singleShot(10000, this,[this] { if (!m_initFinishedSuccess) { emit initFinished(false); } }); } void SunSpecInverter::getInverterMap() { // TODO check map length to modbus max value m_connection->readMap(m_mapModbusStartRegister, m_mapLength); } void SunSpecInverter::readInverterBlockHeader() { m_connection->readMapHeader(m_mapModbusStartRegister); } void SunSpecInverter::onModbusMapReceived(SunSpec::BlockId mapId, uint mapLength, QVector data) { Q_UNUSED(mapLength) if (mapId != m_id) { return; } if (mapLength < m_mapLength) { qCDebug(dcSunSpec()) << "SunSpecInverter: on modbus map received, map length ist too short" << mapLength; //return; } InverterData inverterData; switch (mapId) { case SunSpec::BlockIdInverterSinglePhase: case SunSpec::BlockIdInverterSplitPhase: case SunSpec::BlockIdInverterThreePhase: { inverterData.acCurrent= m_connection->convertValueWithSSF(data[Model10X::Model10XAcCurrent], data[Model10X::Model10XAmpereScaleFactor]); inverterData.acPower = m_connection->convertValueWithSSF(data[Model10X::Model10XACPower], data[Model10X::Model10XWattScaleFactor]); inverterData.lineFrequency = m_connection->convertValueWithSSF(data[Model10X::Model10XLineFrequency], data[Model10X::Model10XHerzScaleFactor]); inverterData.phaseACurrent = m_connection->convertValueWithSSF(data[Model10X::Model10XPhaseACurrent], data[Model10X::Model10XAmpereScaleFactor]); inverterData.phaseBCurrent = m_connection->convertValueWithSSF(data[Model10X::Model10XPhaseBCurrent], data[Model10X::Model10XAmpereScaleFactor]); inverterData.phaseCCurrent = m_connection->convertValueWithSSF(data[Model10X::Model10XPhaseCCurrent], data[Model10X::Model10XAmpereScaleFactor]); inverterData.phaseVoltageAN = m_connection->convertValueWithSSF(data[Model10X::Model10XPhaseVoltageAN], data[Model10X::Model10XVoltageScaleFactor]); inverterData.phaseVoltageBN = m_connection->convertValueWithSSF(data[Model10X::Model10XPhaseVoltageBN], data[Model10X::Model10XVoltageScaleFactor]); inverterData.phaseVoltageCN = m_connection->convertValueWithSSF(data[Model10X::Model10XPhaseVoltageCN], data[Model10X::Model10XVoltageScaleFactor]); qCDebug(dcSunSpec()) << "Energy with SSF values:"; qCDebug(dcSunSpec()) << " - AC Energy 1:" << data[Model10X::Model10XAcEnergy]; qCDebug(dcSunSpec()) << " - AC Energy 2" << data[Model10X::Model10XAcEnergy+1]; quint32 acEnergy = ((static_cast(data.value(Model10X::Model10XAcEnergy))<<16)|static_cast(data.value(Model10X::Model10XAcEnergy+1))); qCDebug(dcSunSpec()) << " - AC Energy combined" << acEnergy; qCDebug(dcSunSpec()) << " - Scale factor:" << data[Model10X::Model10XWattHoursScaleFactor]; inverterData.acEnergy = m_connection->convertValueWithSSF(acEnergy, data[Model10X::Model10XWattHoursScaleFactor]); inverterData.cabinetTemperature = m_connection->convertValueWithSSF(data[Model10X::Model10XCabinetTemperature], data[Model10X::Model10XTemperatureScaleFactor]); inverterData.event = SunSpec::SunSpecEvent1(data[Model10X::Model10XEvent1]); inverterData.operatingState = SunSpec::SunSpecOperatingState(data[Model10X::Model10XOperatingState]); emit inverterDataReceived(inverterData); } break; case SunSpec::BlockIdInverterThreePhaseFloat: case SunSpec::BlockIdInverterSplitPhaseFloat: case SunSpec::BlockIdInverterSinglePhaseFloat: { inverterData.acCurrent = m_connection->convertFloatValues(data[Model11X::Model11XAcCurrent], data[Model11X::Model11XAcCurrent+1]); inverterData.phaseCCurrent = m_connection->convertFloatValues(data[Model11X::Model11XPhaseCCurrent], data[Model11X::Model11XPhaseCCurrent+1]); inverterData.phaseVoltageCN = m_connection->convertFloatValues(data[Model11X::Model11XPhaseVoltageCN], data[Model11X::Model11XPhaseVoltageCN+1]); inverterData.phaseBCurrent = m_connection->convertFloatValues(data[Model11X::Model11XPhaseBCurrent], data[Model11X::Model11XPhaseBCurrent+1]); inverterData.phaseVoltageBN = m_connection->convertFloatValues(data[Model11X::Model11XPhaseVoltageBN], data[Model11X::Model11XPhaseVoltageBN+1]); inverterData.phaseACurrent = m_connection->convertFloatValues(data[Model11X::Model11XPhaseACurrent], data[Model11X::Model11XPhaseACurrent+1]); inverterData.phaseVoltageAN = m_connection->convertFloatValues(data[Model11X::Model11XPhaseVoltageAN], data[Model11X::Model11XPhaseVoltageAN+1]); inverterData.acPower = m_connection->convertFloatValues(data[Model11X::Model11XACPower], data[Model11X::Model11XACPower+1]); inverterData.lineFrequency = m_connection->convertFloatValues(data[Model11X::Model11XLineFrequency], data[Model11X::Model11XLineFrequency+1]); inverterData.acEnergy = m_connection->convertFloatValues(data[Model11X::Model11XAcEnergy], data[Model11X::Model11XAcEnergy+1]); inverterData.cabinetTemperature =m_connection->convertFloatValues(data[Model11X::Model11XCabinetTemperature], data[Model11X::Model11XCabinetTemperature+1]); inverterData.event = SunSpec::SunSpecEvent1(data[Model11X::Model11XEvent1]); inverterData.operatingState = SunSpec::SunSpecOperatingState(data[Model11X::Model11XOperatingState]); emit inverterDataReceived(inverterData); } break; default: //ignore break; } }