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512b743b16 |
@@ -6,3 +6,7 @@ shinelanx-modbus/
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__pycache__/
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*.pyc
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.env
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# versehentlich getrackte Alt-Dateien, gehoeren nicht ins Repo
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Modbus-Server-Kathrein.pdf
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ShineLAN-X/releases/*.bin
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@@ -96,3 +96,8 @@
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| v1.8.19 | 2026-05-05 | Fix: Mobile-Layout — Tabs scrollen, kein horizontaler Overflow |
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| v1.8.20 | 2026-05-05 | Fix: Eigenversorgungskarte bei PV offline, Stromtarif-Einstellungen gehen nicht verloren |
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| v1.8.21 | 2026-05-05 | Fix: Finanzen-Tab bleibt nicht bei "Lade..." hängen (fEur/fKwh Scope-Bug) |
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| v1.8.22 | 2026-05-06 | Fix: Stromtarif-Einstellungen bleiben nach Neustart erhalten; Finanzen-Tab Layout |
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| v1.8.23 | 2026-05-07 | Fix: Goodwe Netzbezug-Periode zeigt 0 kWh — integrierter grid_power-Zähler statt e_total_imp-Delta |
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| v1.8.24 | 2026-05-07 | Fix: WR/Wallbox-Offline-Flapping — erst nach 3 aufeinanderfolgenden Lesefehlern offline schalten |
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| v1.8.25 | 2026-05-07 | Fix: TCP-Timeout auf max. 40% des Poll-Intervalls begrenzt (Wallbox + Modbus) — verhindert Poll-Überlappung |
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| v1.8.26 | 2026-05-07 | Fix: EMS-Countdown läuft ohne Auto — Kathrein 0x0060 IllegalAddress = kein Fahrzeug (default war fälschlich 1=Connected) |
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@@ -1,5 +1,5 @@
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name: ShineBridge
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version: "1.8.21"
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version: "1.8.31"
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slug: shinebridge
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description: Growatt Wechselrichter lokal in Home Assistant — Modbus TCP via ShineLAN-X, MQTT Discovery, Web UI
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url: https://gitea.bitfire.work/retr0/shinebridge
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@@ -23,6 +23,11 @@ TARGET_HOUR = 6 # Zielstunde: Vollladung bis 06:00
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POLL_INTERVAL_S = 30 # Sekunden zwischen EMS-Updates
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PHASES = 3 # Anzahl der Phasen
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VOLTAGE_V = 230 # Netzspannung
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MAX_CHARGE_MA = 32000 # Absolutes Wallbox-Limit (Hardware-Grenze WallboxReader).
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# ACHTUNG: die tatsächlich installierte Wallbox/Zuleitung kann
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# niedriger dimensioniert sein (z.B. 11kW-Wallbox = 16A) — dann
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# über max_charge_ma im Konstruktor auf den echten Wert begrenzen,
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# sonst fordert das Zwangsladen mehr an als das Gerät liefern kann.
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# Charging-State Werte (Kathrein Modbus)
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STATE_IDLE = 0
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@@ -39,11 +44,13 @@ class EmsController:
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pv_timeout_h: float = PV_TIMEOUT_H,
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target_hour: int = TARGET_HOUR,
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phases: int = PHASES,
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max_charge_ma: int = MAX_CHARGE_MA,
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):
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self.min_pv_power = min_pv_power
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self.pv_timeout_h = pv_timeout_h
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self.target_hour = target_hour
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self.phases = phases
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self.max_charge_ma = max_charge_ma
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self._pv_ok_since: Optional[float] = None # Zeitpunkt letzter ausreichender PV
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self._no_pv_since: Optional[float] = None # Zeitpunkt seit kein PV
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@@ -66,7 +73,7 @@ class EmsController:
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total_w = surplus_w + wallbox_w
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current_a = total_w / (VOLTAGE_V * self.phases)
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ma = int(current_a * 1000)
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return max(6000, min(32000, ma))
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return max(6000, min(self.max_charge_ma, ma))
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def update(self, wallbox_reader, pv_surplus_w: float, charging_state: int,
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wallbox_power_w: float = 0.0) -> str:
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@@ -84,8 +91,8 @@ class EmsController:
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if wallbox_reader.enable_ems():
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self._ems_enabled = True
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log.info("[EMS] EMS aktiviert")
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else:
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# Auto weg → alles zurücksetzen
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elif charging_state == STATE_IDLE:
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# Wirklich kein Fahrzeug angesteckt → alles zurücksetzen, Timer neu starten
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if self._ems_enabled:
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wallbox_reader.set_current(0)
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self._ems_enabled = False
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@@ -93,6 +100,16 @@ class EmsController:
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self._no_pv_since = None
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log.info("[EMS] Auto abgesteckt — EMS zurückgesetzt")
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return "kein Fahrzeug"
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else:
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# Unbekannter/nicht abgedeckter Ladezustand (z.B. Fehler/Störung am Fahrzeug).
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# NICHT wie "abgesteckt" behandeln — sonst verliert der Zwangslade-Timer seinen
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# Fortschritt und die Deadline (Zielzeit) wird nie mehr erreicht, obwohl das Auto
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# die ganze Zeit angesteckt war. Strom sicherheitshalber pausieren, aber Zustand/
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# Timer erhalten, damit nach Rückkehr in einen bekannten Zustand nahtlos weitergeht.
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wallbox_reader.set_current(0)
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log.warning("[EMS] Unbekannter Ladezustand %d (evtl. Störung am Fahrzeug) — "
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"Strom pausiert, Zwangslade-Timer bleibt erhalten", charging_state)
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return f"unbekannter Zustand ({charging_state})"
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if charging_state == STATE_COMPLETED:
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wallbox_reader.set_current(0)
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@@ -116,13 +133,16 @@ class EmsController:
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no_pv_h = (now - self._no_pv_since) / 3600.0
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if no_pv_h >= self.pv_timeout_h:
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# Zwangsladen bis Zielzeit
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# Zwangsladen bis Zielzeit — Strom bei JEDEM Update erneut setzen (nicht nur beim
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# ersten Eintritt), sonst bleibt ein einzelner fehlgeschlagener/verworfener Write
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# (Modbus-Hänger, Fahrzeug-Störung) unbemerkt für den Rest der Nacht stehen.
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target = self._next_target()
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mins_left = (target - datetime.now()).total_seconds() / 60
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if not self._forced_charging:
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wallbox_reader.set_current(32000, self.phases)
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self._forced_charging = True
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log.info("[EMS] Zwangsladen gestartet — %dmin bis %02d:00", int(mins_left), self.target_hour)
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log.info("[EMS] Zwangsladen gestartet — %dmin bis %02d:00, max %.0fA",
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int(mins_left), self.target_hour, self.max_charge_ma / 1000)
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wallbox_reader.set_current(self.max_charge_ma, self.phases)
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return f"Zwangsladen ({no_pv_h:.1f}h kein PV, {int(mins_left)}min bis {self.target_hour:02d}:00)"
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# Warten auf PV
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+23
-16
@@ -7,7 +7,7 @@ from typing import Dict, List, Optional, Tuple
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log = logging.getLogger(__name__)
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DB_PATH = "/data/history.db"
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RETENTION_DAYS = 7
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RETENTION_DAYS = 14
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_lock = threading.Lock()
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_conn: sqlite3.Connection | None = None
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@@ -59,9 +59,19 @@ def init_db():
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""")
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c.commit()
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cleanup_old()
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_start_cleanup_scheduler()
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log.info("History DB initialisiert: %s", DB_PATH)
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def _start_cleanup_scheduler():
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def _loop():
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while True:
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time.sleep(86400)
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cleanup_old()
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t = threading.Thread(target=_loop, daemon=True, name="history-cleanup")
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t.start()
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def period_key(period_type: str, billing_day: int = 1, billing_month: int = 1) -> str:
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import datetime
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today = datetime.date.today()
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@@ -117,21 +127,18 @@ def write_batch(inv_id: str, ts: float, values: Dict[str, float]):
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def load_recent(inv_id: str, limit: int = 300) -> Dict[str, List[Tuple[float, float]]]:
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"""Letzte `limit` Messpunkte pro Sensor — zum Befüllen der In-Memory-Deque beim Start."""
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with _lock:
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rows = _get_conn().execute("""
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SELECT sensor_id, ts, value
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FROM (
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SELECT sensor_id, ts, value,
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ROW_NUMBER() OVER (PARTITION BY sensor_id ORDER BY ts DESC) AS rn
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FROM measurements
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WHERE inv_id = ?
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)
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WHERE rn <= ?
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ORDER BY ts ASC
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""", (inv_id, limit)).fetchall()
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result: Dict[str, List[Tuple[float, float]]] = {}
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for sensor_id, ts, value in rows:
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result.setdefault(sensor_id, []).append((ts, value))
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c = _get_conn()
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sensors = [r[0] for r in c.execute(
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"SELECT DISTINCT sensor_id FROM measurements WHERE inv_id = ?", (inv_id,)
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).fetchall()]
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result: Dict[str, List[Tuple[float, float]]] = {}
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for sid in sensors:
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rows = c.execute(
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"SELECT ts, value FROM measurements "
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"WHERE inv_id = ? AND sensor_id = ? ORDER BY ts DESC LIMIT ?",
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(inv_id, sid, limit),
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).fetchall()
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result[sid] = [(ts, val) for ts, val in reversed(rows)]
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return result
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@@ -247,8 +247,9 @@ INVERTERS = {
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name="Kathrein Wallbox",
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manufacturer="Kathrein",
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sensors=_kathrein_sensors(),
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# Meter-Block + EVSE-Status + EMS-Setpoint
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read_ranges=[(0x0030, 48), (0x0060, 10), (0x00A2, 1)],
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# Meter-Block 0x0030-0x005F + charging_state 0x0060 (solo, 0x0061-0x0064 existieren nicht)
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# + EVSE-Status 0x0065-0x006A + EMS-Setpoint 0x00A2
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read_ranges=[(0x0030, 48), (0x0060, 1), (0x0065, 6), (0x00A2, 1)],
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protocol="kathrein",
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goodwe_family="",
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),
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+41
-13
@@ -55,8 +55,8 @@ AGG_SENSOR_IDS: Dict[str, List[str]] = {
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"total_energy_today": ["energy_today", "e_day"],
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"total_energy_total": ["energy_total", "e_total"],
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"grid_power": ["grid_power"],
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"grid_import_kwh": ["import_kwh", "e_total_imp"],
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"grid_export_kwh": ["export_kwh", "e_total_exp"],
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"grid_import_kwh": ["import_kwh", "_int_import", "e_total_imp"],
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"grid_export_kwh": ["export_kwh", "_int_export", "e_total_exp"],
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"bat_charge_power": ["bat_charge_power"],
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"bat_discharge_power": ["bat_discharge_power"],
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"bat_charge_total": ["bat_charge_total", "e_bat_charge_total"],
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@@ -280,17 +280,18 @@ def _poll_loop(inv_cfg: Dict[str, Any], stop: threading.Event):
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log.info("[%s] Poll-Loop: %s @ %s (Goodwe UDP/8899) alle %ds",
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inv_id, inverter.name, host, interval)
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elif inverter.protocol == "kathrein":
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reader = WallboxReader(host=host, port=port)
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reader = WallboxReader(host=host, port=port, timeout=min(5.0, interval * 0.4))
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ems = EmsController(
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min_pv_power=inv_cfg.get("ems_min_pv", 1400),
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pv_timeout_h=inv_cfg.get("ems_timeout", 4.0),
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target_hour=inv_cfg.get("ems_target_hour", 6),
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phases=inv_cfg.get("ems_phases", 3),
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max_charge_ma=inv_cfg.get("ems_max_current_ma", 32000),
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)
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log.info("[%s] Poll-Loop: %s @ %s:%s (Kathrein EMS) alle %ds",
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inv_id, inverter.name, host, port, interval)
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else:
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reader = ModbusReader(host=host, port=port, slave=slave)
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reader = ModbusReader(host=host, port=port, slave=slave, timeout=min(5.0, interval * 0.4))
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log.info("[%s] Poll-Loop: %s @ %s:%s alle %ds",
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inv_id, inverter.name, host, port, interval)
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@@ -310,6 +311,13 @@ def _poll_loop(inv_cfg: Dict[str, Any], stop: threading.Event):
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q.append(pt)
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log.info("[%s] %d Sensoren aus DB geladen", inv_id, len(hist_data))
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# Integrierte Grid-Zähler — starten bei 0, wachsen mit jedem Poll, persistieren in DB
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inv_int_import = hist_data["_int_import"][-1][1] if hist_data.get("_int_import") else 0.0
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inv_int_export = hist_data["_int_export"][-1][1] if hist_data.get("_int_export") else 0.0
|
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last_grid_ts = time.time()
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_fail_count = 0 # aufeinanderfolgende Lesefehler; erst ab >= 3 → offline
|
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_OFFLINE_THRESHOLD = 3
|
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|
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while not stop.is_set():
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t0 = time.time()
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values = reader.read(inverter)
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@@ -322,12 +330,24 @@ def _poll_loop(inv_cfg: Dict[str, Any], stop: threading.Event):
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if values and "grid_power" not in values and "import_kwh" in values and "total_power" in values:
|
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values["grid_power"] = values["total_power"]
|
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|
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# grid_power integrieren → interne kWh-Zähler (Periodenberechnung für Goodwe / kein SDM-630)
|
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if values is not None and "grid_power" in values:
|
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dt_s = t0 - last_grid_ts
|
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if 0 < dt_s < 300:
|
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gp = values["grid_power"]
|
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if gp > 0:
|
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inv_int_import = round(inv_int_import + gp * dt_s / 3_600_000, 6)
|
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elif gp < 0:
|
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inv_int_export = round(inv_int_export + (-gp) * dt_s / 3_600_000, 6)
|
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values["_int_import"] = inv_int_import
|
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values["_int_export"] = inv_int_export
|
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last_grid_ts = t0
|
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|
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# EMS: PV-Überschuss aus anderen Geräten holen und Ladestrom regeln
|
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if ems is not None and values is not None and inv_cfg.get("ems_enabled", True):
|
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pv_surplus = _get_pv_surplus()
|
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# 0x0060 manchmal nicht lesbar → 1 (EV Connected) annehmen,
|
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# damit EMS aktiviert; Wallbox ignoriert Befehle wenn kein Auto da
|
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charging_state = int(values.get("charging_state", 1))
|
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# charging_state aus 0x0060 (solo-Read); fehlt bei kein Fahrzeug → 0 (Idle)
|
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charging_state = int(values.get("charging_state", 0))
|
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wallbox_power = values.get("total_power", 0.0)
|
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ems_status = ems.update(reader, pv_surplus, charging_state, wallbox_power)
|
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values["ems_status_code"] = float(charging_state)
|
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@@ -336,6 +356,7 @@ def _poll_loop(inv_cfg: Dict[str, Any], stop: threading.Event):
|
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with State.lock:
|
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d = State.inv_data.setdefault(inv_id, {"poll_count": 0})
|
||||
if values is not None:
|
||||
_fail_count = 0
|
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d["values"] = values
|
||||
d["last_update"] = time.time()
|
||||
d["modbus_ok"] = True
|
||||
@@ -347,12 +368,15 @@ def _poll_loop(inv_cfg: Dict[str, Any], stop: threading.Event):
|
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q.append((now, val))
|
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history.write_batch(inv_id, now, values)
|
||||
if _publisher:
|
||||
_publisher.publish_data(values, prefix)
|
||||
pub_values = {k: v for k, v in values.items() if not k.startswith("_")}
|
||||
_publisher.publish_data(pub_values, prefix)
|
||||
_publisher.publish_status("online", prefix)
|
||||
else:
|
||||
d["modbus_ok"] = False
|
||||
if _publisher:
|
||||
_publisher.publish_status("offline", prefix)
|
||||
_fail_count += 1
|
||||
if _fail_count >= _OFFLINE_THRESHOLD:
|
||||
d["modbus_ok"] = False
|
||||
if _publisher:
|
||||
_publisher.publish_status("offline", prefix)
|
||||
|
||||
# Aggregate nach jedem erfolgreichen Poll neu berechnen und publizieren
|
||||
if values is not None and _publisher:
|
||||
@@ -952,8 +976,12 @@ if __name__ == "__main__":
|
||||
history.init_db()
|
||||
cfg = load_config()
|
||||
with State.lock:
|
||||
State.mqtt_cfg = {k: cfg[k] for k in
|
||||
("mqtt_broker", "mqtt_port", "mqtt_user", "mqtt_pass")}
|
||||
State.mqtt_cfg = {k: cfg[k] for k in (
|
||||
"mqtt_broker", "mqtt_port", "mqtt_user", "mqtt_pass",
|
||||
"price_import", "price_export", "billing_day", "billing_month",
|
||||
"tariff_type", "spot_country", "spot_markup", "spot_chart",
|
||||
"billing_tracker_enabled", "monthly_rate_eur", "grundpreis_eur_per_month",
|
||||
) if k in cfg}
|
||||
State.inverters_cfg = cfg.get("inverters", [])
|
||||
State.surplus_devices_cfg = cfg.get("surplus_devices", [])
|
||||
State.z2m_base = cfg.get("z2m_base", "zigbee2mqtt")
|
||||
|
||||
@@ -495,6 +495,9 @@ GND → GND
|
||||
<option value="2">2-phasig</option>
|
||||
<option value="3" selected>3-phasig</option>
|
||||
</select></div>
|
||||
<div class="field"><label>Max. Ladestrom (A)</label>
|
||||
<input type="number" id="ems-max-current" value="32" min="6" max="32" step="1">
|
||||
<div style="font-size:11px;color:var(--muted);margin-top:3px">Obergrenze für Zwangsladen — auf die tatsächliche Wallbox-/Zuleitungs-Absicherung setzen (z.B. 16A bei einer 11kW-Wallbox), nicht höher als die Hardware zulässt</div></div>
|
||||
</div>
|
||||
|
||||
<div class="modal-actions">
|
||||
@@ -957,37 +960,39 @@ async function loadFinance() {
|
||||
const lohnt = savings_eur > 0;
|
||||
const col = lohnt ? C.green : C.red;
|
||||
const icon = lohnt ? '✓' : '✗';
|
||||
empfehlung = `<div style="display:flex;align-items:center;justify-content:space-between;background:var(--surface);border:1px solid ${col};border-radius:var(--radius);padding:14px 18px;margin-bottom:16px">
|
||||
empfehlung = `<div style="display:flex;align-items:center;justify-content:space-between;background:var(--surface);border:1px solid ${col};border-radius:var(--radius);padding:18px 22px;margin-bottom:24px">
|
||||
<div>
|
||||
<div style="font-weight:700;font-size:15px;color:${col}">${icon} Flexibler Tarif würde sich ${lohnt ? 'lohnen' : 'nicht lohnen'}</div>
|
||||
<div style="font-size:12px;color:var(--text-dim);margin-top:3px">Basierend auf ${spot_days} Tagen im Abrechnungsjahr</div>
|
||||
<div style="font-size:12px;color:var(--text-dim);margin-top:5px">Basierend auf ${spot_days} Tagen im Abrechnungsjahr</div>
|
||||
</div>
|
||||
<div style="font-size:22px;font-weight:700;color:${col}">${lohnt ? '−' : '+'}${fEur(Math.abs(savings_eur))}</div>
|
||||
<div style="font-size:26px;font-weight:700;color:${col};margin-left:20px;white-space:nowrap">${lohnt ? '−' : '+'}${fEur(Math.abs(savings_eur))}</div>
|
||||
</div>`;
|
||||
}
|
||||
|
||||
// ── Summary-Karten ───────────────────────────────────────────
|
||||
const spotCard = spot_total_eur !== null
|
||||
? `<div class="kwh-card" style="border-top:3px solid ${C.spot}">
|
||||
<div class="kv" style="color:${C.spot}">${fEur(spot_total_eur)}</div>
|
||||
<div class="kl">Spot-Tarif (hypothetisch)<br><span style="opacity:.6">${spot_days} Tage mit Preisdaten</span></div>
|
||||
? `<div class="kwh-card" style="border-top:3px solid ${C.spot};padding:18px 10px">
|
||||
<div class="kv" style="color:${C.spot};font-size:22px">${fEur(spot_total_eur)}</div>
|
||||
<div class="kl" style="font-size:11px;margin-top:6px">Spot-Tarif (hypothetisch)<br><span style="opacity:.6">${spot_days} Tage mit Preisdaten</span></div>
|
||||
</div>`
|
||||
: `<div class="kwh-card"><div class="kv" style="color:var(--text-dim)">–</div><div class="kl">Spot-Tarif<br><span style="opacity:.6">Noch keine Daten</span></div></div>`;
|
||||
: `<div class="kwh-card" style="padding:18px 10px"><div class="kv" style="color:var(--text-dim);font-size:22px">–</div><div class="kl" style="font-size:11px;margin-top:6px">Spot-Tarif<br><span style="opacity:.6">Noch keine Daten</span></div></div>`;
|
||||
|
||||
const savCard = savings_eur !== null
|
||||
? `<div class="kwh-card" style="border-top:3px solid ${savings_eur > 0 ? C.green : C.red}">
|
||||
<div class="kv" style="color:${savings_eur > 0 ? C.green : C.red}">${savings_eur > 0 ? '−' : '+'}${fEur(Math.abs(savings_eur))}</div>
|
||||
<div class="kl">${savings_eur > 0 ? 'Ersparnis mit Spot' : 'Mehrkosten mit Spot'}<br><span style="opacity:.6">gegenüber Festpreis</span></div>
|
||||
? `<div class="kwh-card" style="border-top:3px solid ${savings_eur > 0 ? C.green : C.red};padding:18px 10px">
|
||||
<div class="kv" style="color:${savings_eur > 0 ? C.green : C.red};font-size:22px">${savings_eur > 0 ? '−' : '+'}${fEur(Math.abs(savings_eur))}</div>
|
||||
<div class="kl" style="font-size:11px;margin-top:6px">${savings_eur > 0 ? 'Ersparnis mit Spot' : 'Mehrkosten mit Spot'}<br><span style="opacity:.6">gegenüber Festpreis</span></div>
|
||||
</div>`
|
||||
: '';
|
||||
|
||||
const cards = `<div class="energy-kwh" style="margin-bottom:20px">
|
||||
<div class="kwh-card" style="border-top:3px solid ${C.fixed}">
|
||||
<div class="kv" style="color:${C.fixed}">${fEur(fixed_total_eur)}</div>
|
||||
<div class="kl">Festpreis-Kosten<br><span style="opacity:.6">${total_days} Tage</span></div>
|
||||
</div>
|
||||
${spotCard}${savCard}
|
||||
</div>`;
|
||||
const cards = `
|
||||
<div style="font-size:11px;font-weight:600;text-transform:uppercase;letter-spacing:.08em;color:var(--text-dim);margin-bottom:10px">Kostenübersicht · Abrechnungsjahr</div>
|
||||
<div class="energy-kwh" style="margin-bottom:28px;gap:12px">
|
||||
<div class="kwh-card" style="border-top:3px solid ${C.fixed};padding:18px 10px">
|
||||
<div class="kv" style="color:${C.fixed};font-size:22px">${fEur(fixed_total_eur)}</div>
|
||||
<div class="kl" style="font-size:11px;margin-top:6px">Festpreis-Kosten<br><span style="opacity:.6">${total_days} Tage</span></div>
|
||||
</div>
|
||||
${spotCard}${savCard}
|
||||
</div>`;
|
||||
|
||||
// ── SVG-Balkendiagramm ────────────────────────────────────────
|
||||
const W = 600, H = 180, PL = 44, PR = 12, PT = 10, PB = 28;
|
||||
@@ -1027,13 +1032,17 @@ async function loadFinance() {
|
||||
const legend = `<text x="${PL}" y="${H+18}" font-size="10" fill="${C.fixed}">■ Festpreis</text>
|
||||
<text x="${PL+70}" y="${H+18}" font-size="10" fill="${C.spot}">■ Spot (hypothetisch)</text>`;
|
||||
|
||||
const chart = `<div style="margin-bottom:20px;overflow-x:auto">
|
||||
<svg viewBox="0 0 ${W} ${H+24}" style="width:100%;max-width:${W}px;display:block">
|
||||
${gridLines}${yLabels}${bars}${xLabels}${legend}
|
||||
</svg>
|
||||
</div>`;
|
||||
const chartSection = `
|
||||
<div style="border-top:1px solid var(--border);padding-top:24px;margin-top:4px">
|
||||
<div style="font-size:11px;font-weight:600;text-transform:uppercase;letter-spacing:.08em;color:var(--text-dim);margin-bottom:14px">Kosten je Tag</div>
|
||||
<div style="overflow-x:auto">
|
||||
<svg viewBox="0 0 ${W} ${H+24}" style="width:100%;max-width:${W}px;display:block">
|
||||
${gridLines}${yLabels}${bars}${xLabels}${legend}
|
||||
</svg>
|
||||
</div>
|
||||
</div>`;
|
||||
|
||||
el.innerHTML = empfehlung + cards + chart;
|
||||
el.innerHTML = `<div style="padding:4px 0">${empfehlung}${cards}${chartSection}</div>`;
|
||||
} catch(e) { el.innerHTML = '<div class="no-data">Fehler beim Laden</div>'; console.error('loadFinance:', e); }
|
||||
}
|
||||
|
||||
@@ -1189,6 +1198,7 @@ async function openModal(invId) {
|
||||
document.getElementById("ems-timeout").value = inv.ems_timeout ?? 4;
|
||||
document.getElementById("ems-target-hour").value = inv.ems_target_hour ?? 6;
|
||||
document.getElementById("ems-phases").value = inv.ems_phases ?? 3;
|
||||
document.getElementById("ems-max-current").value = inv.ems_max_current_ma ? inv.ems_max_current_ma / 1000 : 32;
|
||||
document.getElementById("ems-enabled").checked = inv.ems_enabled ?? true;
|
||||
} else {
|
||||
document.getElementById("modal-title").textContent = "Gerät hinzufügen";
|
||||
@@ -1203,6 +1213,7 @@ async function openModal(invId) {
|
||||
document.getElementById("ems-timeout").value = "4";
|
||||
document.getElementById("ems-target-hour").value = "6";
|
||||
document.getElementById("ems-phases").value = "3";
|
||||
document.getElementById("ems-max-current").value = "32";
|
||||
}
|
||||
toggleEmsSection(modelSel.value);
|
||||
modal.classList.add("open");
|
||||
@@ -1237,6 +1248,7 @@ async function saveInverter() {
|
||||
inv.ems_timeout = parseFloat(document.getElementById("ems-timeout").value);
|
||||
inv.ems_target_hour = parseInt(document.getElementById("ems-target-hour").value);
|
||||
inv.ems_phases = parseInt(document.getElementById("ems-phases").value);
|
||||
inv.ems_max_current_ma = Math.round(parseFloat(document.getElementById("ems-max-current").value) * 1000);
|
||||
inv.ems_enabled = document.getElementById("ems-enabled").checked;
|
||||
}
|
||||
const idx = invertersList.findIndex(i => i.id === id);
|
||||
@@ -1687,7 +1699,7 @@ async function wizardStep2Next() {
|
||||
if (!name || !ip) { showToast("Name und IP sind Pflichtfelder", "err"); return; }
|
||||
const model = document.getElementById("wz-inv-model").value;
|
||||
const id = Math.random().toString(36).slice(2, 10);
|
||||
const body = [{
|
||||
const newInv = {
|
||||
id,
|
||||
name,
|
||||
inverter_model: model,
|
||||
@@ -1696,7 +1708,9 @@ async function wizardStep2Next() {
|
||||
modbus_address: parseInt(document.getElementById("wz-inv-addr").value) || 1,
|
||||
mqtt_topic_prefix: `growatt/${name.toLowerCase().replace(/\s+/g, "_")}`,
|
||||
update_interval: 30,
|
||||
}];
|
||||
};
|
||||
// Bestehende Geräte behalten — Wizard darf nicht die komplette Liste überschreiben
|
||||
const body = [...invertersList, newInv];
|
||||
try {
|
||||
await fetchJSON(api("api/inverters-config"), {
|
||||
method: "POST", headers: {"Content-Type": "application/json"},
|
||||
|
||||
Reference in New Issue
Block a user