evcc-io/charger/alpitronic.go

410 lines
11 KiB
Go

package charger
// LICENSE
// Copyright (c) evcc.io (andig, naltatis, premultiply)
// This module is NOT covered by the MIT license. All rights reserved.
// The above copyright notice and this permission notice shall be included in all
// copies or substantial portions of the Software.
// THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
// IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
// FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
// AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
// LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
// OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
// SOFTWARE.
import (
"context"
"encoding/hex"
"errors"
"fmt"
"strings"
"time"
"github.com/evcc-io/evcc/api"
"github.com/evcc-io/evcc/util"
"github.com/evcc-io/evcc/util/modbus"
"github.com/evcc-io/evcc/util/sponsor"
"github.com/volkszaehler/mbmd/encoding"
)
// AlpitronicHYC charger implementation
type AlpitronicHYC struct {
conn *modbus.Connection
inputG func() ([]byte, error)
curr float64
enabled bool
connector uint16
}
// input registers of the charging station (connector 0)
//
//nolint:unused // complete register map as documented by the vendor
const (
hycRegStationTime = 0 // UINT32, s
hycRegStationNumConnectors = 2 // UINT16
hycRegStationState = 3 // UINT16, 0-Available, 8-Unavailable, 10-Faulted
hycRegStationPowerDrained = 4 // UINT32, W
hycRegStationSerial = 6 // 24 byte string
hycRegStationLoadManagement = 18 // UINT16, bool
hycRegStationChargepointId = 30 // 32 byte string
hycRegStationVersionMajor = 46 // UINT16
hycRegStationVersionMinor = 47 // UINT16
hycRegStationVersionPatch = 48 // UINT16
hycRegStationVarInductive = 49 // UINT32, var
hycRegStationVarCapacitive = 51 // UINT32, var
)
// input registers, relative to the connector block (1xx..4xx)
const (
hycRegState = 0 // UINT16
hycRegChargingVoltage = 1 // UINT32, cV
hycRegChargingCurrent = 3 // UINT16, cA up to 3.0, A from 3.1.0 on
hycRegPowerAbsorptionAC = 4 // UINT32, W- DC charging power up to 3.0, AC absorption from 3.1.0 on
hycRegChargeTime = 6 // UINT16, s
hycRegChargedEnergy = 7 // UINT16, kWh/100 up to 3.0, kWh/10 from 3.1.0 on
hycRegSoC = 8 // UINT16, %/100
hycRegConnectorType = 9 // UINT16, 0-ChargePoint, 1-CCS2, 2-CCS1, 3-CHAdeMO, 4-CCS_AC, 5-GBT, 6-MCS, 7-NACS
hycRegMaxPowerAbsorption = 10 // UINT32, W- includes the limit written by us
hycRegMinPowerAbsorption = 12 // UINT32, W
hycRegVID = 18 // 8 bytes
hycRegIdTag = 22 // 20 bytes
hycRegTotalChargedEnergy = 32 // INT64, Wh
// read up to the last register in use (x32..x35). x14/x16 (VAR) are covered but
// no longer documented since 3.1.0- to be verified against the device
hycInputLength = 36
)
// holding registers, relative to the connector block (0xx is the station)
const (
hycRegMaxPowerAC = 0 // UINT32, W per connector, VA for the station
hycRegSetReactivePower = 2 // INT32, var
)
// connector states as per register x00
const (
hycStateAvailable uint16 = iota
hycStatePreparingTagIdReady
hycStatePreparingEVReady
hycStateCharging
hycStateSuspendedEV
hycStateSuspendedEVSE
hycStateFinishing
hycStateReserved
hycStateUnavailable
hycStateUnavailableFwUpdate
hycStateFaulted
hycStateUnavailableConnObj
)
// a zero power limit makes the station report the connector as unavailable and
// abort a running session, so charging is inhibited with a limit that is too low
// for any connector to actually charge- see hycRegMinPowerAbsorption
const (
hycPowerPerAmp = 230 * 3 // W/A on the AC side
hycMinPowerAC = 1547 // W
hycMinCurrent = 2.25 // A, lowest current exceeding hycMinPowerAC
)
func init() {
registry.AddCtx("alpitronic", NewAlpitronicHYCFromConfig)
}
// NewAlpitronicHYCFromConfig creates a Alpitronic charger from generic config
func NewAlpitronicHYCFromConfig(ctx context.Context, other map[string]any) (api.Charger, error) {
cc := struct {
Connector uint16
modbus.TcpSettings `mapstructure:",squash"`
}{
Connector: 1,
TcpSettings: modbus.TcpSettings{
ID: 1,
},
}
if err := util.DecodeOther(other, &cc); err != nil {
return nil, err
}
return NewAlpitronicHYC(ctx, cc.TcpSettings, cc.Connector)
}
// NewAlpitronicHYC creates Alpitronic charger
func NewAlpitronicHYC(ctx context.Context, settings modbus.TcpSettings, connector uint16) (*AlpitronicHYC, error) {
conn, err := settings.Connection(ctx)
if err != nil {
return nil, err
}
if !sponsor.IsAuthorized() {
return nil, api.ErrSponsorRequired
}
log := util.NewLogger("alpitronic")
conn.Logger(log.TRACE)
return newAlpitronicHYC(conn, connector)
}
// newAlpitronicHYC wires the struct without sponsor gate (also used by tests)
func newAlpitronicHYC(conn *modbus.Connection, connector uint16) (*AlpitronicHYC, error) {
wb := &AlpitronicHYC{
conn: conn,
curr: hycMinCurrent,
connector: connector,
}
// share a single bulk read of the connector's input block across all decoders.
// the station applies a fallback when it is not polled within GridFallbackTimeout,
// so keeping the number of roundtrips low matters here.
wb.inputG = util.Cached(func() ([]byte, error) {
return wb.conn.ReadInputRegisters(wb.reg(hycRegState), hycInputLength)
}, time.Second)
// seed the current limit from the charger- this also validates the connector
b, err := wb.conn.ReadHoldingRegisters(wb.reg(hycRegMaxPowerAC), 2)
if err != nil {
return nil, err
}
if power := encoding.Uint32(b); power > hycMinPowerAC {
wb.curr = float64(power) / hycPowerPerAmp
wb.enabled = true
}
return wb, nil
}
// hycInput returns the bytes of the given register within the cached input block
func hycInput(b []byte, reg uint16, n int) []byte {
off := 2 * int(reg)
return b[off : off+n]
}
// hycPower converts a charging current into the AC side power limit
func hycPower(current float64) uint32 {
if current <= 0 {
return 0
}
return uint32(current * hycPowerPerAmp)
}
// setPower writes the connector's power limit
func (wb *AlpitronicHYC) setPower(power uint32) error {
b := make([]byte, 4)
encoding.PutUint32(b, power)
_, err := wb.conn.WriteMultipleRegisters(wb.reg(hycRegMaxPowerAC), 2, b)
if err == nil {
// Status is polled before Enabled, so track our own writes to keep
// the charging state from lagging a cycle behind
wb.enabled = power > hycMinPowerAC
}
return err
}
// reg returns the register address for the connector
func (wb *AlpitronicHYC) reg(reg uint16) uint16 {
return (wb.connector * 100) + reg
}
// state returns the connector state
func (wb *AlpitronicHYC) state() (uint16, error) {
b, err := wb.inputG()
if err != nil {
return 0, err
}
return encoding.Uint16(hycInput(b, hycRegState, 2)), nil
}
// Status implements the api.Charger interface
func (wb *AlpitronicHYC) Status() (api.ChargeStatus, error) {
s, err := wb.state()
if err != nil {
return api.StatusNone, err
}
switch s {
case
hycStateAvailable,
hycStatePreparingTagIdReady, // authorized, waiting for the cable to be plugged in
hycStateReserved,
hycStateUnavailable,
hycStateUnavailableFwUpdate,
hycStateUnavailableConnObj:
return api.StatusA, nil
case
hycStatePreparingEVReady, // plugged in, waiting for authorization
hycStateSuspendedEV,
hycStateSuspendedEVSE,
hycStateFinishing:
return api.StatusB, nil
case hycStateCharging:
if !wb.enabled {
return api.StatusB, nil
}
return api.StatusC, nil
case hycStateFaulted:
return api.StatusNone, errors.New("connector state: faulted")
default:
return api.StatusNone, fmt.Errorf("invalid status: %d", s)
}
}
var _ api.StatusReasoner = (*AlpitronicHYC)(nil)
// StatusReason implements the api.StatusReasoner interface
func (wb *AlpitronicHYC) StatusReason() (api.Reason, error) {
s, err := wb.state()
if err != nil {
return api.ReasonUnknown, err
}
switch s {
case hycStatePreparingEVReady:
return api.ReasonWaitingForAuthorization, nil
case hycStateFinishing:
return api.ReasonDisconnectRequired, nil
default:
return api.ReasonUnknown, nil
}
}
// Enabled implements the api.Charger interface
func (wb *AlpitronicHYC) Enabled() (bool, error) {
b, err := wb.conn.ReadHoldingRegisters(wb.reg(hycRegMaxPowerAC), 2)
if err != nil {
return false, err
}
wb.enabled = encoding.Uint32(b) > hycMinPowerAC
return wb.enabled, nil
}
// Enable implements the api.Charger interface
func (wb *AlpitronicHYC) Enable(enable bool) error {
power := uint32(hycMinPowerAC)
if enable {
power = hycPower(wb.curr)
}
return wb.setPower(power)
}
// MaxCurrent implements the api.Charger interface
func (wb *AlpitronicHYC) MaxCurrent(current int64) error {
return wb.MaxCurrentMillis(float64(current))
}
var _ api.ChargerEx = (*AlpitronicHYC)(nil)
// MaxCurrentMillis implements the api.ChargerEx interface
//
// api.CurrentLimiter is deliberately not implemented: registers x10/x36 contain
// the connector power limit written by evcc itself, so using them as upper bound
// would feed back into the limit. Use the loadpoint's maxcurrent instead.
func (wb *AlpitronicHYC) MaxCurrentMillis(current float64) error {
if current < hycMinCurrent {
return fmt.Errorf("invalid current %.1f", current)
}
err := wb.setPower(hycPower(current))
if err == nil {
wb.curr = current
}
return err
}
var _ api.Meter = (*AlpitronicHYC)(nil)
// CurrentPower implements the api.Meter interface
func (wb *AlpitronicHYC) CurrentPower() (float64, error) {
b, err := wb.inputG()
if err != nil {
return 0, err
}
return float64(encoding.Uint32(hycInput(b, hycRegPowerAbsorptionAC, 4))), nil
}
var _ api.ChargeTimer = (*AlpitronicHYC)(nil)
// ChargeDuration implements the api.ChargeTimer interface
func (wb *AlpitronicHYC) ChargeDuration() (time.Duration, error) {
b, err := wb.inputG()
if err != nil {
return 0, err
}
return time.Duration(encoding.Uint16(hycInput(b, hycRegChargeTime, 2))) * time.Second, nil
}
// api.ChargeRater is not implemented: hycRegChargedEnergy is scaled kWh/100 up to
// firmware 3.0 and kWh/10 from 3.1.0 on, so the session energy is derived from
// TotalEnergy instead
var _ api.MeterEnergy = (*AlpitronicHYC)(nil)
// TotalEnergy implements the api.MeterEnergy interface
func (wb *AlpitronicHYC) TotalEnergy() (float64, error) {
b, err := wb.inputG()
if err != nil {
return 0, err
}
return float64(encoding.Int64(hycInput(b, hycRegTotalChargedEnergy, 8))) / 1e3, nil
}
var _ api.Identifier = (*AlpitronicHYC)(nil)
// Identify implements the api.Identifier interface
func (wb *AlpitronicHYC) Identify() ([]string, error) {
b, err := wb.inputG()
if err != nil {
return nil, err
}
var res []string
// the idTag register holds the rfid uid as null-padded ascii string
if idTag := hycInput(b, hycRegIdTag, 20); !allZero(idTag) {
res = append(res, strings.ToLower(strings.TrimRight(string(idTag), "\x00")))
}
if vid := hycInput(b, hycRegVID, 8); !allZero(vid) {
res = append(res, hex.EncodeToString(vid))
}
return res, nil
}
var _ api.Battery = (*AlpitronicHYC)(nil)
// Soc implements the api.Battery interface
func (wb *AlpitronicHYC) Soc() (float64, error) {
b, err := wb.inputG()
if err != nil {
return 0, err
}
return float64(encoding.Uint16(hycInput(b, hycRegSoC, 2))) / 100, nil
}
func allZero(s []byte) bool {
for _, v := range s {
if v != 0 {
return false
}
}
return true
}