evcc-io/charger/em2go-duo.go

291 lines
8 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/binary"
"fmt"
"time"
"github.com/evcc-io/evcc/api"
"github.com/evcc-io/evcc/util"
"github.com/evcc-io/evcc/util/modbus"
)
// Em2GoDuo charger implementation
type Em2GoDuo struct {
log *util.Logger
conn *modbus.Connection
base uint16
connector int
}
const (
em2GoDuoRegSerial = 0 // Chr[16] RO UTF16
em2GoDuoRegCommTimeout = 50 // Uint16 WR 1s
em2GoDuoRegSafeCurrent = 52 // Uint16 WR 0.1A
em2GoDuoRegChargeMode = 54 // Uint16 WR ENUM
em2GoDuoRegConnectorState = 56 // Uint16 RO ENUM
em2GoDuoRegCableState = 58 // Uint16 RO ENUM
em2GoDuoRegErrorCode = 60 // Uint16 RO ENUM
em2GoDuoRegConCurrents = 0 // Uint16 RO 0.1A
em2GoDuoRegConVoltages = 6 // Uint16 RO 0.1V
em2GoDuoRegConPower = 24 // Uint32 RO 1W
em2GoDuoRegConEnergy = 28 // Uint32 RO 0.1KWh
em2GoDuoRegConChargeDuration = 34 // Uint32 RO 1s
em2GoDuoRegConCurrentLimit = 44 // Uint16 WR 1A
em2GoDuoRegConChargeCommand = 46 // Uint16 WR ENUM
)
func init() {
registry.AddCtx("em2go-duo", NewEm2GoDuoFromConfig)
}
// NewEm2GoDuoFromConfig creates a Em2GoDuo charger from generic config
func NewEm2GoDuoFromConfig(ctx context.Context, other map[string]any) (api.Charger, error) {
cc := struct {
modbus.TcpSettings `mapstructure:",squash"`
Connector int
}{
TcpSettings: modbus.TcpSettings{
ID: 255,
Delay: 60 * time.Millisecond,
},
Connector: 1,
}
if err := util.DecodeOther(other, &cc); err != nil {
return nil, err
}
return NewEm2GoDuo(ctx, cc.TcpSettings, cc.Connector)
}
// NewEm2GoDuo creates Em2GoDuo charger
func NewEm2GoDuo(ctx context.Context, settings modbus.TcpSettings, connector int) (api.Charger, error) {
if connector < 1 || connector > 2 {
return nil, fmt.Errorf("invalid connector %d, must be 1 or 2", connector)
}
conn, err := settings.Connection(ctx)
if err != nil {
return nil, err
}
log := util.NewLogger("em2go-duo")
conn.Logger(log.TRACE)
wb := &Em2GoDuo{
log: log,
conn: conn,
base: 256 * uint16(connector),
connector: connector,
}
b, err := wb.conn.ReadHoldingRegisters(em2GoDuoRegCommTimeout, 1)
if err != nil {
return nil, fmt.Errorf("failsafe timeout: %w", err)
}
if u := binary.BigEndian.Uint16(b); u > 0 {
go wb.heartbeat(ctx, time.Duration(u)*time.Second/2)
}
return wb, nil
}
// heartbeat keeps the Modbus connection alive to prevent the charger from
// entering its failsafe state when the configured communication timeout expires.
func (wb *Em2GoDuo) heartbeat(ctx context.Context, interval time.Duration) {
for tick := time.Tick(interval); ; {
select {
case <-tick:
if _, err := wb.conn.ReadHoldingRegisters(em2GoDuoRegSafeCurrent, 1); err != nil {
wb.log.ERROR.Println("heartbeat:", err)
}
case <-ctx.Done():
return
}
}
}
// Status implements the api.Charger interface
func (wb *Em2GoDuo) Status() (api.ChargeStatus, error) {
b, err := wb.conn.ReadHoldingRegisters(em2GoDuoRegConnectorState, 1)
if err != nil {
return api.StatusNone, err
}
s := binary.BigEndian.Uint16(b)
// High 8-bit value for connector 2, low 8-bit value for connector 1
if wb.connector == 2 {
s >>= 8
}
switch s & 0xff {
case
1, // Available
9: // Unavailable
return api.StatusA, nil
case
2, // Preparing
4, // SuspendedEV
5, // SuspendedEVSE
6: // Finishing
return api.StatusB, nil
case
3: // Charging
return api.StatusC, nil
default:
return api.StatusNone, fmt.Errorf("invalid status: %d", s)
}
}
// Enabled implements the api.Charger interface
func (wb *Em2GoDuo) Enabled() (bool, error) {
b, err := wb.conn.ReadHoldingRegisters(wb.base+em2GoDuoRegConChargeCommand, 1)
if err != nil {
return false, err
}
return binary.BigEndian.Uint16(b) == 1, nil
}
// Enable implements the api.Charger interface
func (wb *Em2GoDuo) Enable(enable bool) error {
b := make([]byte, 2)
if enable {
binary.BigEndian.PutUint16(b, 1)
}
_, err := wb.conn.WriteMultipleRegisters(wb.base+em2GoDuoRegConChargeCommand, 1, b)
return err
}
// MaxCurrent implements the api.Charger interface
func (wb *Em2GoDuo) MaxCurrent(current int64) error {
b := make([]byte, 2)
binary.BigEndian.PutUint16(b, uint16(current))
_, err := wb.conn.WriteMultipleRegisters(wb.base+em2GoDuoRegConCurrentLimit, 1, b)
return err
}
var _ api.CurrentGetter = (*Em2GoDuo)(nil)
// GetMaxCurrent implements the api.CurrentGetter interface
func (wb *Em2GoDuo) GetMaxCurrent() (float64, error) {
b, err := wb.conn.ReadHoldingRegisters(wb.base+em2GoDuoRegConCurrentLimit, 1)
if err != nil {
return 0, err
}
return float64(binary.BigEndian.Uint16(b)), err
}
var _ api.Meter = (*Em2GoDuo)(nil)
// CurrentPower implements the api.Meter interface
func (wb *Em2GoDuo) CurrentPower() (float64, error) {
b, err := wb.conn.ReadHoldingRegisters(wb.base+em2GoDuoRegConPower, 2)
if err != nil {
return 0, err
}
return float64(binary.BigEndian.Uint32(b)), nil
}
var _ api.MeterEnergy = (*Em2GoDuo)(nil)
// TotalEnergy implements the api.MeterEnergy interface
func (wb *Em2GoDuo) TotalEnergy() (float64, error) {
b, err := wb.conn.ReadHoldingRegisters(wb.base+em2GoDuoRegConEnergy, 2)
if err != nil {
return 0, err
}
return float64(binary.BigEndian.Uint32(b)) / 10, nil
}
// getPhaseValues returns 3 register values offset by 2
func (wb *Em2GoDuo) getPhaseValues(reg uint16) (float64, float64, float64, error) {
var res [3]float64
for i := range 3 {
b, err := wb.conn.ReadHoldingRegisters(reg+2*uint16(i), 1)
if err != nil {
return 0, 0, 0, err
}
res[i] = float64(binary.BigEndian.Uint16(b)) / 10
}
return res[0], res[1], res[2], nil
}
var _ api.PhaseCurrents = (*Em2GoDuo)(nil)
// Currents implements the api.PhaseCurrents interface
func (wb *Em2GoDuo) Currents() (float64, float64, float64, error) {
return wb.getPhaseValues(wb.base + em2GoDuoRegConCurrents)
}
var _ api.PhaseVoltages = (*Em2GoDuo)(nil)
// Voltages implements the api.PhaseVoltages interface
func (wb *Em2GoDuo) Voltages() (float64, float64, float64, error) {
return wb.getPhaseValues(wb.base + em2GoDuoRegConVoltages)
}
var _ api.ChargeTimer = (*Em2GoDuo)(nil)
// ChargeDuration implements the api.ChargeTimer interface
func (wb *Em2GoDuo) ChargeDuration() (time.Duration, error) {
b, err := wb.conn.ReadHoldingRegisters(wb.base+em2GoDuoRegConChargeDuration, 2)
if err != nil {
return 0, err
}
return time.Duration(binary.BigEndian.Uint32(b)) * time.Second, nil
}
var _ api.Diagnosis = (*Em2GoDuo)(nil)
// Diagnose implements the api.Diagnosis interface
func (wb *Em2GoDuo) Diagnose() {
fmt.Printf("\tConnector:\t%d\n", wb.connector)
if b, err := wb.conn.ReadHoldingRegisters(em2GoDuoRegConnectorState, 1); err == nil {
fmt.Printf("\tConnector State:\t%d\n", binary.BigEndian.Uint16(b))
}
if b, err := wb.conn.ReadHoldingRegisters(em2GoDuoRegCableState, 1); err == nil {
fmt.Printf("\tCable State:\t%d\n", binary.BigEndian.Uint16(b))
}
if b, err := wb.conn.ReadHoldingRegisters(em2GoDuoRegErrorCode, 1); err == nil {
fmt.Printf("\tError Code:\t%d\n", binary.BigEndian.Uint16(b))
}
if b, err := wb.conn.ReadHoldingRegisters(em2GoDuoRegSafeCurrent, 1); err == nil {
fmt.Printf("\tSafe Current:\t%.1fA\n", float64(binary.BigEndian.Uint16(b))/10)
}
if b, err := wb.conn.ReadHoldingRegisters(em2GoDuoRegCommTimeout, 1); err == nil {
fmt.Printf("\tConnection Timeout:\t%d\n", binary.BigEndian.Uint16(b))
}
}