evcc-io/core/loadpoint.go

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package core
import (
"errors"
"fmt"
"math"
"reflect"
"strings"
"sync"
"time"
"github.com/evcc-io/evcc/api"
"github.com/evcc-io/evcc/core/coordinator"
"github.com/evcc-io/evcc/core/db"
"github.com/evcc-io/evcc/core/loadpoint"
"github.com/evcc-io/evcc/core/planner"
"github.com/evcc-io/evcc/core/soc"
"github.com/evcc-io/evcc/core/wrapper"
"github.com/evcc-io/evcc/push"
"github.com/evcc-io/evcc/util"
evbus "github.com/asaskevich/EventBus"
"github.com/avast/retry-go/v3"
"github.com/benbjohnson/clock"
"github.com/cjrd/allocate"
)
const (
evChargeStart = "start" // update chargeTimer
evChargeStop = "stop" // update chargeTimer
evChargeCurrent = "current" // update fakeChargeMeter
evChargePower = "power" // update chargeRater
evVehicleConnect = "connect" // vehicle connected
evVehicleDisconnect = "disconnect" // vehicle disconnected
evVehicleSoc = "soc" // vehicle soc progress
evVehicleUnidentified = "guest" // vehicle unidentified
pvTimer = "pv"
pvEnable = "enable"
pvDisable = "disable"
phaseTimer = "phase"
phaseScale1p = "scale1p"
phaseScale3p = "scale3p"
timerInactive = "inactive"
minActiveCurrent = 1.0 // minimum current at which a phase is treated as active
minActiveVoltage = 208 // minimum voltage at which a phase is treated as active
guardGracePeriod = 10 * time.Second // allow out of sync during this timespan
)
// elapsed is the time an expired timer will be set to
var elapsed = time.Unix(0, 1)
// PollConfig defines the vehicle polling mode and interval
type PollConfig struct {
Mode string `mapstructure:"mode"` // polling mode charging (default), connected, always
Interval time.Duration `mapstructure:"interval"` // interval when not charging
}
// SocConfig defines soc settings, estimation and update behaviour
type SocConfig struct {
Poll PollConfig `mapstructure:"poll"`
Estimate *bool `mapstructure:"estimate"`
Min_ int `mapstructure:"min"` // TODO deprecated
Target_ int `mapstructure:"target"` // TODO deprecated
min int // Default minimum Soc, guarded by mutex
target int // Default target Soc, guarded by mutex
}
// Poll modes
const (
pollCharging = "charging"
pollConnected = "connected"
pollAlways = "always"
pollInterval = 60 * time.Minute
)
// ThresholdConfig defines enable/disable hysteresis parameters
type ThresholdConfig struct {
Delay time.Duration
Threshold float64
}
// Task is the task type
type Task = func()
// Loadpoint is responsible for controlling charge depending on
// Soc needs and power availability.
type Loadpoint struct {
clock clock.Clock // mockable time
bus evbus.Bus // event bus
pushChan chan<- push.Event // notifications
uiChan chan<- util.Param // client push messages
lpChan chan<- *Loadpoint // update requests
log *util.Logger
// exposed public configuration
sync.Mutex // guard status
Mode api.ChargeMode `mapstructure:"mode"` // Charge mode, guarded by mutex
Title_ string `mapstructure:"title"` // UI title
ConfiguredPhases int `mapstructure:"phases"` // Charger configured phase mode 0/1/3
ChargerRef string `mapstructure:"charger"` // Charger reference
VehicleRef string `mapstructure:"vehicle"` // Vehicle reference
VehiclesRef_ []string `mapstructure:"vehicles"` // TODO deprecated
MeterRef string `mapstructure:"meter"` // Charge meter reference
Soc SocConfig
Enable, Disable ThresholdConfig
ResetOnDisconnect bool `mapstructure:"resetOnDisconnect"`
onDisconnect api.ActionConfig
targetEnergy float64 // Target charge energy for dumb vehicles in kWh
MinCurrent float64 // PV mode: start current Min+PV mode: min current
MaxCurrent float64 // Max allowed current. Physically ensured by the charger
GuardDuration time.Duration // charger enable/disable minimum holding time
enabled bool // Charger enabled state
phases int // Charger enabled phases, guarded by mutex
measuredPhases int // Charger physically measured phases
chargeCurrent float64 // Charger current limit
guardUpdated time.Time // Charger enabled/disabled timestamp
socUpdated time.Time // Soc updated timestamp (poll: connected)
vehicleDetect time.Time // Vehicle connected timestamp
vehicleDetectTicker *clock.Ticker
vehicleIdentifier string
charger api.Charger
chargeTimer api.ChargeTimer
chargeRater api.ChargeRater
chargeMeter api.Meter // Charger usage meter
vehicle api.Vehicle // Currently active vehicle
defaultVehicle api.Vehicle // Default vehicle (disables detection)
coordinator coordinator.API
socEstimator *soc.Estimator
// target charging
planner *planner.Planner
targetTime time.Time // time goal
planSlotEnd time.Time // current plan slot end time
planActive bool // plan is active
// cached state
status api.ChargeStatus // Charger status
remoteDemand loadpoint.RemoteDemand // External status demand
chargePower float64 // Charging power
chargeCurrents []float64 // Phase currents
connectedTime time.Time // Time when vehicle was connected
pvTimer time.Time // PV enabled/disable timer
phaseTimer time.Time // 1p3p switch timer
wakeUpTimer *Timer // Vehicle wake-up timeout
// charge progress
vehicleSoc float64 // Vehicle Soc
chargeDuration time.Duration // Charge duration
chargedEnergy float64 // Charged energy while connected in Wh
chargeRemainingDuration time.Duration // Remaining charge duration
chargeRemainingEnergy float64 // Remaining charge energy in Wh
progress *Progress // Step-wise progress indicator
// session log
db db.Database
session *db.Session
tasks *util.Queue[Task] // tasks to be executed
}
// NewLoadpointFromConfig creates a new loadpoint
func NewLoadpointFromConfig(log *util.Logger, cp configProvider, other map[string]interface{}) (*Loadpoint, error) {
lp := NewLoadpoint(log)
if err := util.DecodeOther(other, lp); err != nil {
return nil, err
}
// set vehicle polling mode
switch lp.Soc.Poll.Mode = strings.ToLower(lp.Soc.Poll.Mode); lp.Soc.Poll.Mode {
case pollCharging:
case pollConnected, pollAlways:
lp.log.WARN.Printf("poll mode '%s' may deplete your battery or lead to API misuse. USE AT YOUR OWN RISK.", lp.Soc.Poll)
default:
if lp.Soc.Poll.Mode != "" {
lp.log.WARN.Printf("invalid poll mode: %s", lp.Soc.Poll.Mode)
}
lp.Soc.Poll.Mode = pollCharging
}
// set vehicle polling interval
if lp.Soc.Poll.Interval < pollInterval {
if lp.Soc.Poll.Interval == 0 {
lp.Soc.Poll.Interval = pollInterval
} else {
lp.log.WARN.Printf("poll interval '%v' is lower than %v and may deplete your battery or lead to API misuse. USE AT YOUR OWN RISK.", lp.Soc.Poll.Interval, pollInterval)
}
}
if lp.MinCurrent == 0 {
lp.log.WARN.Println("minCurrent must not be zero")
}
if lp.MaxCurrent < lp.MinCurrent {
lp.log.WARN.Println("maxCurrent must be larger than minCurrent")
}
if lp.Soc.Min_ != 0 {
lp.log.WARN.Println("Configuring soc.min at loadpoint is deprecated and must be applied per vehicle")
}
if lp.Soc.Target_ != 0 {
lp.log.WARN.Println("Configuring soc.target at loadpoint is deprecated and must be applied per vehicle")
}
// store defaults
lp.collectDefaults()
if lp.MeterRef != "" {
var err error
if lp.chargeMeter, err = cp.Meter(lp.MeterRef); err != nil {
return nil, err
}
}
// default vehicle
if lp.VehicleRef != "" {
var err error
if lp.defaultVehicle, err = cp.Vehicle(lp.VehicleRef); err != nil {
return nil, err
}
}
// TODO deprecated
if len(lp.VehiclesRef_) > 0 {
lp.log.WARN.Println("vehicles option is deprecated")
}
if lp.ChargerRef == "" {
return nil, errors.New("missing charger")
}
var err error
if lp.charger, err = cp.Charger(lp.ChargerRef); err != nil {
return nil, err
}
lp.configureChargerType(lp.charger)
// setup fixed phases:
// - simple charger starts with phases config if specified or 3p
// - switchable charger starts at 0p since we don't know the current setting
if _, ok := lp.charger.(api.PhaseSwitcher); !ok {
if lp.ConfiguredPhases == 0 {
lp.ConfiguredPhases = 3
lp.log.WARN.Println("phases not configured, assuming 3p")
}
lp.phases = lp.ConfiguredPhases
} else if lp.ConfiguredPhases != 0 {
lp.log.WARN.Printf("locking phase config to %dp for switchable charger", lp.ConfiguredPhases)
}
// validate thresholds
if lp.Enable.Threshold > lp.Disable.Threshold {
lp.log.WARN.Printf("PV mode enable threshold (%.0fW) is larger than disable threshold (%.0fW)", lp.Enable.Threshold, lp.Disable.Threshold)
} else if lp.Enable.Threshold > 0 {
lp.log.WARN.Printf("PV mode enable threshold %.0fW > 0 will start PV charging on grid power consumption. Did you mean -%.0f?", lp.Enable.Threshold, lp.Enable.Threshold)
}
return lp, nil
}
// NewLoadpoint creates a Loadpoint with sane defaults
func NewLoadpoint(log *util.Logger) *Loadpoint {
clock := clock.New()
bus := evbus.New()
lp := &Loadpoint{
log: log, // logger
clock: clock, // mockable time
bus: bus, // event bus
Mode: api.ModeOff,
status: api.StatusNone,
MinCurrent: 6, // A
MaxCurrent: 16, // A
Soc: SocConfig{min: 0, target: 100}, // %
Enable: ThresholdConfig{Delay: time.Minute, Threshold: 0}, // t, W
Disable: ThresholdConfig{Delay: 3 * time.Minute, Threshold: 0}, // t, W
GuardDuration: 5 * time.Minute,
progress: NewProgress(0, 10), // soc progress indicator
coordinator: coordinator.NewDummy(), // dummy vehicle coordinator
tasks: util.NewQueue[Task](), // task queue
}
return lp
}
// collectDefaults collects default values for use on disconnect
func (lp *Loadpoint) collectDefaults() {
// get reference to action config
actionCfg := &lp.onDisconnect
// allocate action config such that all pointer fields are fully allocated
if err := allocate.Zero(actionCfg); err == nil {
// initialize with default values
*actionCfg.Mode = lp.GetMode()
*actionCfg.MinCurrent = lp.GetMinCurrent()
*actionCfg.MaxCurrent = lp.GetMaxCurrent()
*actionCfg.MinSoc = lp.GetMinSoc()
*actionCfg.TargetSoc = lp.GetTargetSoc()
} else {
lp.log.ERROR.Printf("error allocating action config: %v", err)
}
}
// requestUpdate requests site to update this loadpoint
func (lp *Loadpoint) requestUpdate() {
select {
case lp.lpChan <- lp: // request loadpoint update
default:
}
}
// configureChargerType ensures that chargeMeter, Rate and Timer can use charger capabilities
func (lp *Loadpoint) configureChargerType(charger api.Charger) {
var integrated bool
// ensure charge meter exists
if lp.chargeMeter == nil {
integrated = true
if mt, ok := charger.(api.Meter); ok {
lp.chargeMeter = mt
} else {
mt := new(wrapper.ChargeMeter)
_ = lp.bus.Subscribe(evChargeCurrent, lp.evChargeCurrentWrappedMeterHandler)
_ = lp.bus.Subscribe(evChargeStop, func() { mt.SetPower(0) })
lp.chargeMeter = mt
}
}
// ensure charge rater exists
// measurement are obtained from separate charge meter if defined
// (https://github.com/evcc-io/evcc/issues/2469)
if rt, ok := charger.(api.ChargeRater); ok && integrated {
lp.chargeRater = rt
} else {
rt := wrapper.NewChargeRater(lp.log, lp.chargeMeter)
_ = lp.bus.Subscribe(evChargePower, rt.SetChargePower)
_ = lp.bus.Subscribe(evVehicleConnect, func() { rt.StartCharge(false) })
_ = lp.bus.Subscribe(evChargeStart, func() { rt.StartCharge(true) })
_ = lp.bus.Subscribe(evChargeStop, rt.StopCharge)
lp.chargeRater = rt
}
// ensure charge timer exists
if ct, ok := charger.(api.ChargeTimer); ok {
lp.chargeTimer = ct
} else {
ct := wrapper.NewChargeTimer()
_ = lp.bus.Subscribe(evVehicleConnect, func() { ct.StartCharge(false) })
_ = lp.bus.Subscribe(evChargeStart, func() { ct.StartCharge(true) })
_ = lp.bus.Subscribe(evChargeStop, ct.StopCharge)
lp.chargeTimer = ct
}
// add wakeup timer
lp.wakeUpTimer = NewTimer()
}
// pushEvent sends push messages to clients
func (lp *Loadpoint) pushEvent(event string) {
lp.pushChan <- push.Event{Event: event}
}
// publish sends values to UI and databases
func (lp *Loadpoint) publish(key string, val interface{}) {
if lp.uiChan != nil {
lp.uiChan <- util.Param{Key: key, Val: val}
}
}
// evChargeStartHandler sends external start event
func (lp *Loadpoint) evChargeStartHandler() {
lp.log.INFO.Println("start charging ->")
lp.pushEvent(evChargeStart)
lp.wakeUpTimer.Stop()
// soc update reset
lp.socUpdated = time.Time{}
// set created when first charging session segment starts
lp.updateSession(func(session *db.Session) {
if session.Created.IsZero() {
session.Created = lp.clock.Now()
}
})
}
// evChargeStopHandler sends external stop event
func (lp *Loadpoint) evChargeStopHandler() {
lp.log.INFO.Println("stop charging <-")
lp.pushEvent(evChargeStop)
// soc update reset
lp.socUpdated = time.Time{}
// reset pv enable/disable timer
// https://github.com/evcc-io/evcc/issues/2289
if !lp.pvTimer.Equal(elapsed) {
lp.resetPVTimer()
}
lp.stopSession()
}
// evVehicleConnectHandler sends external start event
func (lp *Loadpoint) evVehicleConnectHandler() {
lp.log.INFO.Printf("car connected")
// energy
lp.setChargedEnergy(0)
lp.publish("chargedEnergy", lp.getChargedEnergy())
// duration
lp.connectedTime = lp.clock.Now()
lp.publish("connectedDuration", time.Duration(0))
// soc update reset
lp.socUpdated = time.Time{}
// soc update reset on car change
if lp.socEstimator != nil {
lp.socEstimator.Reset()
}
// set default or start detection
lp.vehicleDefaultOrDetect()
// immediately allow pv mode activity
lp.elapsePVTimer()
// create charging session
lp.createSession()
}
// evVehicleDisconnectHandler sends external start event
func (lp *Loadpoint) evVehicleDisconnectHandler() {
lp.log.INFO.Println("car disconnected")
// session is persisted during evChargeStopHandler which runs before
lp.clearSession()
// phases are unknown when vehicle disconnects
lp.resetMeasuredPhases()
// energy and duration
lp.publish("chargedEnergy", lp.getChargedEnergy())
lp.publish("connectedDuration", lp.clock.Since(lp.connectedTime))
// remove charger vehicle id and stop potential detection
lp.setVehicleIdentifier("")
lp.stopVehicleDetection()
// remove active vehicle if not default
if lp.vehicle != lp.defaultVehicle {
lp.setActiveVehicle(lp.defaultVehicle)
}
// set default mode on disconnect
if lp.ResetOnDisconnect {
actionCfg := lp.onDisconnect
if v := lp.defaultVehicle; v != nil {
actionCfg = actionCfg.Merge(v.OnIdentified())
}
lp.applyAction(actionCfg)
}
// soc update reset
lp.socUpdated = time.Time{}
// reset plan once charge goal is met
lp.setTargetTime(time.Time{})
lp.setPlanActive(false)
}
// evVehicleSocProgressHandler sends external start event
func (lp *Loadpoint) evVehicleSocProgressHandler(soc float64) {
if lp.progress.NextStep(soc) {
lp.pushEvent(evVehicleSoc)
}
}
// evChargeCurrentHandler publishes the charge current
func (lp *Loadpoint) evChargeCurrentHandler(current float64) {
if !lp.enabled {
current = 0
}
lp.publish("chargeCurrent", current)
}
// evChargeCurrentWrappedMeterHandler updates the dummy charge meter's charge power.
// This simplifies the main flow where the charge meter can always be treated as present.
// It assumes that the charge meter cannot consume more than total household consumption.
// If physical charge meter is present this handler is not used.
// The actual value is published by the evChargeCurrentHandler
func (lp *Loadpoint) evChargeCurrentWrappedMeterHandler(current float64) {
power := current * float64(lp.activePhases()) * Voltage
// if disabled we cannot be charging
if !lp.enabled || !lp.charging() {
power = 0
}
// handler only called if charge meter was replaced by dummy
lp.chargeMeter.(*wrapper.ChargeMeter).SetPower(power)
}
// applyAction executes the action
func (lp *Loadpoint) applyAction(actionCfg api.ActionConfig) {
if actionCfg.Mode != nil {
lp.SetMode(*actionCfg.Mode)
}
if min := actionCfg.MinCurrent; min != nil && *min >= *lp.onDisconnect.MinCurrent {
lp.SetMinCurrent(*min)
}
if max := actionCfg.MaxCurrent; max != nil && *max <= *lp.onDisconnect.MaxCurrent {
lp.SetMaxCurrent(*max)
}
if actionCfg.MinSoc != nil {
lp.SetMinSoc(*actionCfg.MinSoc)
}
if actionCfg.TargetSoc != nil {
lp.SetTargetSoc(*actionCfg.TargetSoc)
}
}
// Prepare loadpoint configuration by adding missing helper elements
func (lp *Loadpoint) Prepare(uiChan chan<- util.Param, pushChan chan<- push.Event, lpChan chan<- *Loadpoint) {
lp.uiChan = uiChan
lp.pushChan = pushChan
lp.lpChan = lpChan
// event handlers
_ = lp.bus.Subscribe(evChargeStart, lp.evChargeStartHandler)
_ = lp.bus.Subscribe(evChargeStop, lp.evChargeStopHandler)
_ = lp.bus.Subscribe(evVehicleConnect, lp.evVehicleConnectHandler)
_ = lp.bus.Subscribe(evVehicleDisconnect, lp.evVehicleDisconnectHandler)
_ = lp.bus.Subscribe(evChargeCurrent, lp.evChargeCurrentHandler)
_ = lp.bus.Subscribe(evVehicleSoc, lp.evVehicleSocProgressHandler)
// publish initial values
lp.publish(title, lp.Title())
lp.publish(minCurrent, lp.MinCurrent)
lp.publish(maxCurrent, lp.MaxCurrent)
lp.setConfiguredPhases(lp.ConfiguredPhases)
lp.publish(phasesEnabled, lp.phases)
lp.publish(phasesActive, lp.activePhases())
lp.publishTimer(phaseTimer, 0, timerInactive)
lp.publishTimer(pvTimer, 0, timerInactive)
// assign and publish default vehicle
if lp.defaultVehicle != nil {
lp.setActiveVehicle(lp.defaultVehicle)
}
lp.publish("mode", lp.GetMode())
lp.publish(targetSoc, lp.GetTargetSoc())
lp.publish(minSoc, lp.GetMinSoc())
// reset detection state
lp.publish(vehicleDetectionActive, false)
// read initial charger state to prevent immediately disabling charger
if enabled, err := lp.charger.Enabled(); err == nil {
if lp.enabled = enabled; enabled {
lp.guardUpdated = lp.clock.Now()
// set defined current for use by pv mode
_ = lp.setLimit(lp.GetMinCurrent(), false)
}
} else {
lp.log.ERROR.Printf("charger: %v", err)
}
// allow charger to access loadpoint
if ctrl, ok := lp.charger.(loadpoint.Controller); ok {
ctrl.LoadpointControl(lp)
}
}
// syncCharger updates charger status and synchronizes it with expectations
func (lp *Loadpoint) syncCharger() {
enabled, err := lp.charger.Enabled()
if err == nil {
if enabled != lp.enabled {
if time.Since(lp.guardUpdated) > guardGracePeriod {
lp.log.WARN.Printf("charger out of sync: expected %vd, got %vd", status[lp.enabled], status[enabled])
}
err = lp.charger.Enable(lp.enabled)
}
if !enabled && lp.charging() {
if time.Since(lp.guardUpdated) > guardGracePeriod {
lp.log.WARN.Println("charger logic error: disabled but charging")
}
err = lp.charger.Enable(false)
}
}
if err != nil {
lp.log.ERROR.Printf("charger: %v", err)
}
}
// setLimit applies charger current limits and enables/disables accordingly
func (lp *Loadpoint) setLimit(chargeCurrent float64, force bool) error {
// set current
if chargeCurrent != lp.chargeCurrent && chargeCurrent >= lp.GetMinCurrent() {
var err error
if charger, ok := lp.charger.(api.ChargerEx); ok && !lp.vehicleHasFeature(api.CoarseCurrent) {
err = charger.MaxCurrentMillis(chargeCurrent)
} else {
chargeCurrent = math.Trunc(chargeCurrent)
err = lp.charger.MaxCurrent(int64(chargeCurrent))
}
if err != nil {
return fmt.Errorf("max charge current %.3gA: %w", chargeCurrent, err)
}
lp.log.DEBUG.Printf("max charge current: %.3gA", chargeCurrent)
lp.chargeCurrent = chargeCurrent
lp.bus.Publish(evChargeCurrent, chargeCurrent)
}
// set enabled/disabled
if enabled := chargeCurrent >= lp.GetMinCurrent(); enabled != lp.enabled {
if remaining := (lp.GuardDuration - lp.clock.Since(lp.guardUpdated)).Truncate(time.Second); remaining > 0 && !force {
lp.log.DEBUG.Printf("charger %s: contactor delay %v", status[enabled], remaining)
return nil
}
// remote stop
// TODO https://github.com/evcc-io/evcc/discussions/1929
// if car, ok := lp.vehicle.(api.VehicleChargeController); !enabled && ok {
// // log but don't propagate
// if err := car.StopCharge(); err != nil {
// lp.log.ERROR.Printf("vehicle remote charge stop: %v", err)
// }
// }
if err := lp.charger.Enable(enabled); err != nil {
return fmt.Errorf("charger %s: %w", status[enabled], err)
}
lp.log.DEBUG.Printf("charger %s", status[enabled])
lp.enabled = enabled
lp.guardUpdated = lp.clock.Now()
lp.bus.Publish(evChargeCurrent, chargeCurrent)
// start/stop vehicle wake-up timer
if enabled {
lp.log.DEBUG.Printf("wake-up timer: start")
lp.wakeUpTimer.Start()
} else {
lp.log.DEBUG.Printf("wake-up timer: stop")
lp.wakeUpTimer.Stop()
}
// remote start
// TODO https://github.com/evcc-io/evcc/discussions/1929
// if car, ok := lp.vehicle.(api.VehicleChargeController); enabled && ok {
// // log but don't propagate
// if err := car.StartCharge(); err != nil {
// lp.log.ERROR.Printf("vehicle remote charge start: %v", err)
// }
// }
}
return nil
}
// connected returns the EVs connection state
func (lp *Loadpoint) connected() bool {
status := lp.GetStatus()
return status == api.StatusB || status == api.StatusC
}
// charging returns the EVs charging state
func (lp *Loadpoint) charging() bool {
return lp.GetStatus() == api.StatusC
}
// charging returns the EVs charging state
func (lp *Loadpoint) setStatus(status api.ChargeStatus) {
lp.Lock()
defer lp.Unlock()
lp.status = status
}
// remainingChargeEnergy returns missing energy amount in kWh if vehicle has a valid energy target
func (lp *Loadpoint) remainingChargeEnergy() (float64, bool) {
return float64(lp.targetEnergy) - lp.getChargedEnergy()/1e3,
(lp.vehicle == nil || lp.vehicleHasFeature(api.Offline)) && lp.targetEnergy > 0
}
// targetEnergyReached checks if target is configured and reached
func (lp *Loadpoint) targetEnergyReached() bool {
f, ok := lp.remainingChargeEnergy()
return ok && f <= 0
}
// targetSocReached checks if target is configured and reached.
// If vehicle is not configured this will always return false
func (lp *Loadpoint) targetSocReached() bool {
return lp.vehicle != nil &&
lp.Soc.target > 0 &&
lp.Soc.target < 100 &&
lp.vehicleSoc >= float64(lp.Soc.target)
}
// minSocNotReached checks if minimum is configured and not reached.
// If vehicle is not configured this will always return false
func (lp *Loadpoint) minSocNotReached() bool {
if lp.vehicle == nil || lp.Soc.min == 0 {
return false
}
if lp.vehicleSoc != 0 {
return lp.vehicleSoc < float64(lp.Soc.min)
}
minEnergy := lp.vehicle.Capacity() * float64(lp.Soc.min) / 100 / soc.ChargeEfficiency
return minEnergy > 0 && lp.getChargedEnergy() < minEnergy
}
// climateActive checks if vehicle has active climate request
func (lp *Loadpoint) climateActive() bool {
if cl, ok := lp.vehicle.(api.VehicleClimater); ok {
active, outsideTemp, targetTemp, err := cl.Climater()
if err == nil {
lp.log.DEBUG.Printf("climater active: %v, target temp: %.1f°C, outside temp: %.1f°C", active, targetTemp, outsideTemp)
status := "off"
if active {
status = "on"
switch {
case outsideTemp < targetTemp:
status = "heating"
case outsideTemp > targetTemp:
status = "cooling"
}
}
lp.publish("climater", status)
return active
}
if !errors.Is(err, api.ErrNotAvailable) {
lp.log.ERROR.Printf("climater: %v", err)
}
}
return false
}
// disableUnlessClimater disables the charger unless climate is active
func (lp *Loadpoint) disableUnlessClimater() error {
var current float64 // zero disables
if lp.climateActive() {
current = lp.GetMinCurrent()
}
// reset plan once charge goal is met
lp.setPlanActive(false)
return lp.setLimit(current, true)
}
// remoteControlled returns true if remote control status is active
func (lp *Loadpoint) remoteControlled(demand loadpoint.RemoteDemand) bool {
lp.Lock()
defer lp.Unlock()
return lp.remoteDemand == demand
}
// statusEvents converts the observed charger status change into a logical sequence of events
func statusEvents(prevStatus, status api.ChargeStatus) []string {
res := make([]string, 0, 2)
// changed from A - connected
if prevStatus == api.StatusA || (status != api.StatusA && prevStatus == api.StatusNone) {
res = append(res, evVehicleConnect)
}
// changed to C - start charging
if status == api.StatusC {
res = append(res, evChargeStart)
}
// changed from C - stop charging
if prevStatus == api.StatusC {
res = append(res, evChargeStop)
}
// changed to A - disconnected
if status == api.StatusA {
res = append(res, evVehicleDisconnect)
}
return res
}
// updateChargerStatus updates charger status and detects car connected/disconnected events
func (lp *Loadpoint) updateChargerStatus() error {
status, err := lp.charger.Status()
if err != nil {
return err
}
lp.log.DEBUG.Printf("charger status: %s", status)
if prevStatus := lp.GetStatus(); status != prevStatus {
lp.setStatus(status)
for _, ev := range statusEvents(prevStatus, status) {
lp.bus.Publish(ev)
// send connect/disconnect events except during startup
if prevStatus != api.StatusNone {
switch ev {
case evVehicleConnect:
lp.pushEvent(evVehicleConnect)
case evVehicleDisconnect:
lp.pushEvent(evVehicleDisconnect)
}
}
}
// update whenever there is a state change
lp.bus.Publish(evChargeCurrent, lp.chargeCurrent)
}
return nil
}
// effectiveCurrent returns the currently effective charging current
func (lp *Loadpoint) effectiveCurrent() float64 {
if !lp.charging() {
return 0
}
// adjust actual current for vehicles like Zoe where it remains below target
if lp.chargeCurrents != nil {
cur := lp.chargeCurrents[0]
return math.Min(cur+2.0, lp.chargeCurrent)
}
return lp.chargeCurrent
}
// elapsePVTimer puts the pv enable/disable timer into elapsed state
func (lp *Loadpoint) elapsePVTimer() {
if lp.pvTimer.Equal(elapsed) {
return
}
lp.log.DEBUG.Printf("pv timer elapse")
lp.pvTimer = elapsed
lp.guardUpdated = elapsed
lp.publishTimer(pvTimer, 0, timerInactive)
}
// resetPVTimer resets the pv enable/disable timer to disabled state
func (lp *Loadpoint) resetPVTimer(typ ...string) {
if lp.pvTimer.IsZero() {
return
}
msg := "pv timer reset"
if len(typ) == 1 {
msg = fmt.Sprintf("pv %s timer reset", typ[0])
}
lp.log.DEBUG.Printf(msg)
lp.pvTimer = time.Time{}
lp.publishTimer(pvTimer, 0, timerInactive)
}
// resetPhaseTimer resets the phase switch timer to disabled state
func (lp *Loadpoint) resetPhaseTimer() {
if lp.phaseTimer.IsZero() {
return
}
lp.phaseTimer = time.Time{}
lp.publishTimer(phaseTimer, 0, timerInactive)
}
// scalePhasesRequired validates if fixed phase configuration matches enabled phases
func (lp *Loadpoint) scalePhasesRequired() bool {
_, ok := lp.charger.(api.PhaseSwitcher)
return ok && lp.ConfiguredPhases != 0 && lp.ConfiguredPhases != lp.GetPhases()
}
// scalePhasesIfAvailable scales if api.PhaseSwitcher is available
func (lp *Loadpoint) scalePhasesIfAvailable(phases int) error {
if lp.ConfiguredPhases != 0 {
phases = lp.ConfiguredPhases
}
if _, ok := lp.charger.(api.PhaseSwitcher); ok {
return lp.scalePhases(phases)
}
return nil
}
// scalePhases adjusts the number of active phases and returns the appropriate charging current.
// Returns api.ErrNotAvailable if api.PhaseSwitcher is not available.
func (lp *Loadpoint) scalePhases(phases int) error {
cp, ok := lp.charger.(api.PhaseSwitcher)
if !ok {
panic("charger does not implement api.PhaseSwitcher")
}
if lp.GetPhases() != phases {
// disable charger - this will also stop the car charging using the api if available
if err := lp.setLimit(0, true); err != nil {
return err
}
// switch phases
if err := cp.Phases1p3p(phases); err != nil {
return fmt.Errorf("switch phases: %w", err)
}
// update setting and reset timer
lp.setPhases(phases)
// allow pv mode to re-enable charger right away
lp.elapsePVTimer()
}
return nil
}
// fastCharging scales to 3p if available and sets maximum current
func (lp *Loadpoint) fastCharging() error {
err := lp.scalePhasesIfAvailable(3)
if err == nil {
err = lp.setLimit(lp.GetMaxCurrent(), true)
}
return err
}
// pvScalePhases switches phases if necessary and returns if switch occurred
func (lp *Loadpoint) pvScalePhases(availablePower, minCurrent, maxCurrent float64) bool {
phases := lp.GetPhases()
// observed phase state inconsistency
// - https://github.com/evcc-io/evcc/issues/1572
// - https://github.com/evcc-io/evcc/issues/2230
// - https://github.com/evcc-io/evcc/issues/2613
measuredPhases := lp.getMeasuredPhases()
if phases > 0 && phases < measuredPhases {
lp.log.WARN.Printf("ignoring inconsistent phases: %dp < %dp observed active", phases, measuredPhases)
}
var waiting bool
activePhases := lp.activePhases()
// scale down phases
if targetCurrent := powerToCurrent(availablePower, activePhases); targetCurrent < minCurrent && activePhases > 1 && lp.ConfiguredPhases < 3 {
lp.log.DEBUG.Printf("available power %.0fW < %.0fW min %dp threshold", availablePower, float64(activePhases)*Voltage*minCurrent, activePhases)
if lp.phaseTimer.IsZero() {
lp.log.DEBUG.Printf("start phase %s timer", phaseScale1p)
lp.phaseTimer = lp.clock.Now()
}
lp.publishTimer(phaseTimer, lp.Disable.Delay, phaseScale1p)
if elapsed := lp.clock.Since(lp.phaseTimer); elapsed >= lp.Disable.Delay {
lp.log.DEBUG.Printf("phase %s timer elapsed", phaseScale1p)
if err := lp.scalePhases(1); err == nil {
lp.log.DEBUG.Printf("switched phases: 1p @ %.0fW", availablePower)
} else {
lp.log.ERROR.Println(err)
}
return true
}
waiting = true
}
maxPhases := lp.maxActivePhases()
target1pCurrent := powerToCurrent(availablePower, 1)
scalable := maxPhases > 1 && phases < maxPhases && target1pCurrent > maxCurrent
// scale up phases
if targetCurrent := powerToCurrent(availablePower, maxPhases); targetCurrent >= minCurrent && scalable {
lp.log.DEBUG.Printf("available power %.0fW > %.0fW min %dp threshold", availablePower, 3*Voltage*minCurrent, maxPhases)
if lp.phaseTimer.IsZero() {
lp.log.DEBUG.Printf("start phase %s timer", phaseScale3p)
lp.phaseTimer = lp.clock.Now()
}
lp.publishTimer(phaseTimer, lp.Enable.Delay, phaseScale3p)
if elapsed := lp.clock.Since(lp.phaseTimer); elapsed >= lp.Enable.Delay {
lp.log.DEBUG.Printf("phase %s timer elapsed", phaseScale3p)
if err := lp.scalePhases(3); err == nil {
lp.log.DEBUG.Printf("switched phases: 3p @ %.0fW", availablePower)
} else {
lp.log.ERROR.Println(err)
}
return true
}
waiting = true
}
// reset timer to disabled state
if !waiting && !lp.phaseTimer.IsZero() {
lp.resetPhaseTimer()
}
return false
}
// coordinatedVehicles is the slice of vehicles from the coordinator
func (lp *Loadpoint) coordinatedVehicles() []api.Vehicle {
if lp.coordinator == nil {
return nil
}
return lp.coordinator.GetVehicles()
}
// TODO move up to timer functions
func (lp *Loadpoint) publishTimer(name string, delay time.Duration, action string) {
timer := lp.pvTimer
if name == phaseTimer {
timer = lp.phaseTimer
}
remaining := delay - lp.clock.Since(timer)
if remaining < 0 {
remaining = 0
}
lp.publish(name+"Action", action)
lp.publish(name+"Remaining", remaining)
if action == timerInactive {
lp.log.DEBUG.Printf("%s timer %s", name, action)
} else {
lp.log.DEBUG.Printf("%s %s in %v", name, action, remaining.Round(time.Second))
}
}
// pvMaxCurrent calculates the maximum target current for PV mode
func (lp *Loadpoint) pvMaxCurrent(mode api.ChargeMode, sitePower float64, batteryBuffered bool) float64 {
// read only once to simplify testing
minCurrent := lp.GetMinCurrent()
maxCurrent := lp.GetMaxCurrent()
// switch phases up/down
if _, ok := lp.charger.(api.PhaseSwitcher); ok {
availablePower := -sitePower + lp.chargePower
// in case of scaling, keep charger disabled for this cycle
if lp.pvScalePhases(availablePower, minCurrent, maxCurrent) {
return 0
}
}
// calculate target charge current from delta power and actual current
effectiveCurrent := lp.effectiveCurrent()
activePhases := lp.activePhases()
deltaCurrent := powerToCurrent(-sitePower, activePhases)
targetCurrent := math.Max(effectiveCurrent+deltaCurrent, 0)
lp.log.DEBUG.Printf("pv charge current: %.3gA = %.3gA + %.3gA (%.0fW @ %dp)", targetCurrent, effectiveCurrent, deltaCurrent, sitePower, activePhases)
// in MinPV mode or under special conditions return at least minCurrent
if (mode == api.ModeMinPV || batteryBuffered || lp.climateActive()) && targetCurrent < minCurrent {
return minCurrent
}
if mode == api.ModePV && lp.enabled && targetCurrent < minCurrent {
// kick off disable sequence
if sitePower >= lp.Disable.Threshold && lp.phaseTimer.IsZero() {
lp.log.DEBUG.Printf("site power %.0fW >= %.0fW disable threshold", sitePower, lp.Disable.Threshold)
if lp.pvTimer.IsZero() {
lp.log.DEBUG.Printf("pv disable timer start: %v", lp.Disable.Delay)
lp.pvTimer = lp.clock.Now()
}
lp.publishTimer(pvTimer, lp.Disable.Delay, pvDisable)
elapsed := lp.clock.Since(lp.pvTimer)
if elapsed >= lp.Disable.Delay {
lp.log.DEBUG.Println("pv disable timer elapsed")
return 0
}
// suppress duplicate log message after timer started
if elapsed > time.Second {
lp.log.DEBUG.Printf("pv disable timer remaining: %v", (lp.Disable.Delay - elapsed).Round(time.Second))
}
} else {
// reset timer
lp.resetPVTimer("disable")
}
// lp.log.DEBUG.Println("pv disable timer: keep enabled")
return minCurrent
}
if mode == api.ModePV && !lp.enabled {
// kick off enable sequence
if (lp.Enable.Threshold == 0 && targetCurrent >= minCurrent) ||
(lp.Enable.Threshold != 0 && sitePower <= lp.Enable.Threshold) {
lp.log.DEBUG.Printf("site power %.0fW <= %.0fW enable threshold", sitePower, lp.Enable.Threshold)
if lp.pvTimer.IsZero() {
lp.log.DEBUG.Printf("pv enable timer start: %v", lp.Enable.Delay)
lp.pvTimer = lp.clock.Now()
}
lp.publishTimer(pvTimer, lp.Enable.Delay, pvEnable)
elapsed := lp.clock.Since(lp.pvTimer)
if elapsed >= lp.Enable.Delay {
lp.log.DEBUG.Println("pv enable timer elapsed")
return minCurrent
}
// suppress duplicate log message after timer started
if elapsed > time.Second {
lp.log.DEBUG.Printf("pv enable timer remaining: %v", (lp.Enable.Delay - elapsed).Round(time.Second))
}
} else {
// reset timer
lp.resetPVTimer("enable")
}
// lp.log.DEBUG.Println("pv enable timer: keep disabled")
return 0
}
// reset timer to disabled state
lp.resetPVTimer()
// cap at maximum current
targetCurrent = math.Min(targetCurrent, maxCurrent)
return targetCurrent
}
// UpdateChargePower updates charge meter power
func (lp *Loadpoint) UpdateChargePower() {
err := retry.Do(func() error {
value, err := lp.chargeMeter.CurrentPower()
if err != nil {
return err
}
lp.Lock()
lp.chargePower = value // update value if no error
lp.Unlock()
lp.log.DEBUG.Printf("charge power: %.0fW", value)
lp.publish("chargePower", value)
// use -1 for https://github.com/evcc-io/evcc/issues/2153
if lp.chargePower < -1 {
lp.log.WARN.Printf("charge power must not be negative: %.0f", lp.chargePower)
}
return nil
}, retryOptions...)
if err != nil {
lp.log.ERROR.Printf("charge meter: %v", err)
}
}
// updateChargeCurrents uses PhaseCurrents interface to count phases with current >=1A
func (lp *Loadpoint) updateChargeCurrents() {
lp.chargeCurrents = nil
phaseMeter, ok := lp.chargeMeter.(api.PhaseCurrents)
if !ok {
return // don't guess
}
i1, i2, i3, err := phaseMeter.Currents()
if err != nil {
lp.log.ERROR.Printf("charge meter: %v", err)
return
}
lp.chargeCurrents = []float64{i1, i2, i3}
lp.log.DEBUG.Printf("charge currents: %.3gA", lp.chargeCurrents)
lp.publish("chargeCurrents", lp.chargeCurrents)
if lp.charging() {
// Quine-McCluskey for (¬L1∧L2∧¬L3) ∨ (¬L1∧¬L2∧L3) ∨ (L1∧¬L2∧L3) ∨ (¬L1∧L2∧L3) -> ¬L1 ∧ L2 ∨ ¬L2 ∧ L3
if !(i1 > minActiveCurrent) && (i2 > minActiveCurrent) || !(i2 > minActiveCurrent) && (i3 > minActiveCurrent) {
lp.log.WARN.Printf("invalid phase wiring between charge meter and charger")
}
var phases int
for _, i := range lp.chargeCurrents {
if i > minActiveCurrent {
phases++
}
}
if phases >= 1 {
lp.Lock()
lp.measuredPhases = phases
lp.Unlock()
lp.log.DEBUG.Printf("detected active phases: %dp", phases)
lp.publish(phasesActive, phases)
}
}
}
// updateChargeVoltages uses PhaseVoltages interface to count phases with nominal grid voltage
func (lp *Loadpoint) updateChargeVoltages() {
if _, ok := lp.charger.(api.PhaseSwitcher); ok {
return // we don't need the voltages
}
phaseMeter, ok := lp.chargeMeter.(api.PhaseVoltages)
if !ok {
return // don't guess
}
u1, u2, u3, err := phaseMeter.Voltages()
if err != nil {
lp.log.ERROR.Printf("charge meter: %v", err)
return
}
chargeVoltages := []float64{u1, u2, u3}
lp.log.DEBUG.Printf("charge voltages: %.3gV", chargeVoltages)
lp.publish("chargeVoltages", chargeVoltages)
// Quine-McCluskey for (¬L1∧L2∧¬L3) ∨ (L1∧L2∧¬L3) ∨ (¬L1∧¬L2∧L3) ∨ (L1∧¬L2∧L3) ∨ (¬L1∧L2∧L3) -> ¬L1 ∧ L3 ∨ L2 ∧ ¬L3 ∨ ¬L2 ∧ L3
if !(u1 > minActiveVoltage) && (u3 > minActiveVoltage) || (u2 > minActiveVoltage) && !(u3 > minActiveVoltage) || !(u2 > minActiveVoltage) && (u3 > minActiveVoltage) {
lp.log.WARN.Printf("invalid phase wiring between charge meter and charger")
}
var phases int
if (u1 > minActiveVoltage) || (u2 > minActiveVoltage) || (u3 > minActiveVoltage) {
phases = 3
}
if (u1 > minActiveVoltage) && (u2 < minActiveVoltage) && (u3 < minActiveVoltage) {
phases = 1
}
if phases >= 1 {
lp.log.DEBUG.Printf("detected connected phases: %dp", phases)
lp.setPhases(phases)
}
}
// publish charged energy and duration
func (lp *Loadpoint) publishChargeProgress() {
if f, err := lp.chargeRater.ChargedEnergy(); err == nil {
// workaround for Go-E resetting during disconnect, see
// https://github.com/evcc-io/evcc/issues/5092
if f > 0 {
lp.setChargedEnergy(1e3 * f) // convert to Wh
}
} else {
lp.log.ERROR.Printf("charge rater: %v", err)
}
if d, err := lp.chargeTimer.ChargingTime(); err == nil {
lp.chargeDuration = d.Round(time.Second)
} else {
lp.log.ERROR.Printf("charge timer: %v", err)
}
lp.publish("chargedEnergy", lp.getChargedEnergy())
lp.publish("chargeDuration", lp.chargeDuration)
if _, ok := lp.chargeMeter.(api.MeterEnergy); ok {
lp.publish("chargeTotalImport", lp.chargeMeterTotal())
}
}
// socPollAllowed validates charging state against polling mode
func (lp *Loadpoint) socPollAllowed() bool {
remaining := lp.Soc.Poll.Interval - lp.clock.Since(lp.socUpdated)
honourUpdateInterval := lp.Soc.Poll.Mode == pollAlways ||
lp.Soc.Poll.Mode == pollConnected && lp.connected() ||
lp.Soc.Poll.Mode == pollCharging && lp.connected() && (lp.vehicleSoc < float64(lp.Soc.target))
if honourUpdateInterval && remaining > 0 {
lp.log.DEBUG.Printf("next soc poll remaining time: %v", remaining.Truncate(time.Second))
}
return lp.charging() || honourUpdateInterval && (remaining <= 0) || lp.connected() && lp.socUpdated.IsZero()
}
// checks if the connected charger can provide Soc to the connected vehicle
func (lp *Loadpoint) socProvidedByCharger() bool {
if charger, ok := lp.charger.(api.Battery); ok {
if _, err := charger.Soc(); err == nil {
return true
}
}
return false
}
// publish state of charge, remaining charge duration and range
func (lp *Loadpoint) publishSocAndRange() {
// guard for socEstimator removed by api
if lp.socEstimator == nil {
return
}
if lp.socPollAllowed() || lp.socProvidedByCharger() {
lp.socUpdated = lp.clock.Now()
f, err := lp.socEstimator.Soc(lp.getChargedEnergy())
if err != nil {
if errors.Is(err, api.ErrMustRetry) {
lp.socUpdated = time.Time{}
} else {
lp.log.ERROR.Printf("vehicle soc: %v", err)
}
return
}
lp.vehicleSoc = math.Trunc(f)
lp.log.DEBUG.Printf("vehicle soc: %.0f%%", lp.vehicleSoc)
lp.publish(vehicleSoc, lp.vehicleSoc)
// vehicle target soc
targetSoc := 100
if vs, ok := lp.vehicle.(api.SocLimiter); ok {
if limit, err := vs.TargetSoc(); err == nil {
targetSoc = int(math.Trunc(limit))
lp.log.DEBUG.Printf("vehicle soc limit: %.0f%%", limit)
lp.publish(vehicleTargetSoc, limit)
} else {
lp.log.ERROR.Printf("vehicle soc limit: %v", err)
}
}
// use minimum of vehicle and loadpoint
socLimit := targetSoc
if lp.Soc.target < socLimit {
socLimit = lp.Soc.target
}
var d time.Duration
if lp.charging() {
d = lp.socEstimator.RemainingChargeDuration(socLimit, lp.chargePower)
}
lp.SetRemainingDuration(d)
lp.SetRemainingEnergy(1e3 * lp.socEstimator.RemainingChargeEnergy(socLimit))
// range
if vs, ok := lp.vehicle.(api.VehicleRange); ok {
if rng, err := vs.Range(); err == nil {
lp.log.DEBUG.Printf("vehicle range: %dkm", rng)
lp.publish(vehicleRange, rng)
} else {
lp.log.ERROR.Printf("vehicle range: %v", err)
}
}
// trigger message after variables are updated
lp.bus.Publish(evVehicleSoc, f)
}
}
// addTask adds a single task to the queue
func (lp *Loadpoint) addTask(task func()) {
// test guard
if lp.tasks != nil {
// don't add twice
if t, ok := lp.tasks.First(); ok &&
reflect.ValueOf(t).Pointer() == reflect.ValueOf(task).Pointer() {
return
}
lp.tasks.Enqueue(task)
}
}
// processTasks executes a single task from the queue
func (lp *Loadpoint) processTasks() {
// test guard
if lp.tasks != nil {
if task, ok := lp.tasks.Dequeue(); ok {
task()
}
}
}
// Update is the main control function. It reevaluates meters and charger state
func (lp *Loadpoint) Update(sitePower float64, batteryBuffered bool) {
lp.processTasks()
mode := lp.GetMode()
lp.publish("mode", mode)
// read and publish meters first- charge power has already been updated by the site
lp.updateChargeVoltages()
lp.updateChargeCurrents()
// update ChargeRater here to make sure initial meter update is caught
lp.bus.Publish(evChargeCurrent, lp.chargeCurrent)
lp.bus.Publish(evChargePower, lp.chargePower)
// update progress and soc before status is updated
lp.publishChargeProgress()
// read and publish status
if err := lp.updateChargerStatus(); err != nil {
lp.log.ERROR.Printf("charger: %v", err)
return
}
lp.publish("connected", lp.connected())
lp.publish("charging", lp.charging())
lp.publish("enabled", lp.enabled)
// identify connected vehicle
if lp.connected() {
// read identity and run associated action
lp.identifyVehicle()
// find vehicle by status for a couple of minutes after connecting
if lp.vehicleUnidentified() {
lp.identifyVehicleByStatus()
}
}
// publish soc after updating charger status to make sure
// initial update of connected state matches charger status
lp.publishSocAndRange()
// sync settings with charger
lp.syncCharger()
// check if car connected and ready for charging
var err error
// track if remote disabled is actually active
remoteDisabled := loadpoint.RemoteEnable
// execute loading strategy
switch {
case !lp.connected():
// always disable charger if not connected
// https://github.com/evcc-io/evcc/issues/105
err = lp.setLimit(0, false)
case lp.scalePhasesRequired():
if err = lp.scalePhases(lp.ConfiguredPhases); err == nil {
lp.log.DEBUG.Printf("switched phases: %dp", lp.ConfiguredPhases)
}
case lp.targetEnergyReached():
lp.log.DEBUG.Printf("targetEnergy reached: %.0fkWh > %0.1fkWh", lp.getChargedEnergy()/1e3, lp.targetEnergy)
err = lp.disableUnlessClimater()
case lp.targetSocReached():
lp.log.DEBUG.Printf("targetSoc reached: %.1f%% > %d%%", lp.vehicleSoc, lp.Soc.target)
err = lp.disableUnlessClimater()
// OCPP has priority over target charging
case lp.remoteControlled(loadpoint.RemoteHardDisable):
remoteDisabled = loadpoint.RemoteHardDisable
fallthrough
case mode == api.ModeOff:
err = lp.setLimit(0, true)
// immediate charging
case mode == api.ModeNow:
err = lp.fastCharging()
// minimum or target charging
case lp.minSocNotReached() || lp.plannerActive():
err = lp.fastCharging()
lp.resetPhaseTimer()
lp.elapsePVTimer() // let PV mode disable immediately afterwards
case mode == api.ModeMinPV || mode == api.ModePV:
targetCurrent := lp.pvMaxCurrent(mode, sitePower, batteryBuffered)
var required bool // false
if targetCurrent == 0 && lp.climateActive() {
targetCurrent = lp.GetMinCurrent()
required = true
}
// Sunny Home Manager
if lp.remoteControlled(loadpoint.RemoteSoftDisable) {
remoteDisabled = loadpoint.RemoteSoftDisable
targetCurrent = 0
required = true
}
err = lp.setLimit(targetCurrent, required)
}
// Wake-up checks
if lp.enabled && lp.status == api.StatusB &&
int(lp.vehicleSoc) < lp.Soc.target && lp.wakeUpTimer.Expired() {
lp.wakeUpVehicle()
}
// effective disabled status
if remoteDisabled != loadpoint.RemoteEnable {
lp.publish("remoteDisabled", remoteDisabled)
}
// log any error
if err != nil {
lp.log.ERROR.Println(err)
}
}