forked from fritob/Camper-Monitor
Solar-Integration und dev_watch-Geräte zusammenführen
solar-integration (aus dem separaten VanAligneiOS-Repo) und dev_watch haben unabhängige Git-Historien, decken aber überlappende und sich ergänzende Funktionen ab. Übernommen aus solar-integration: Votronic- Solar-ESP-Anbindung samt Geräterolle, die Live-Activity/Widget-Extension fürs Sperrbildschirm/Dynamic-Island/CarPlay, das Querformat-Layout für Libelle/Fahrzeug-Ansicht und Ausrichtungs-Assistent, sowie die mehreren Fahrzeuggrafik-Stile (Vanster/California). Beibehalten aus dev_watch: alle zusätzlichen Geräteprotokolle (Daly-/JBD-BMS, Alpicool- Kühlbox, WattCycle, Victron), die dort zwischenzeitlich entstanden. Die Xcode-Projektdatei wurde von Hand um die neue Widget-Extension samt SharedActivity-Gruppe erweitert (Datei-synchronisierte Gruppen, kein App-Group-Entitlement nötig). Build für App, Watch und Widget-Extension geprüft (Debug und Release). Co-Authored-By: Claude Sonnet 5 <noreply@anthropic.com>
This commit is contained in:
co-authored by
Claude Sonnet 5
parent
812874baef
commit
e9b9c5bcd5
@@ -0,0 +1,332 @@
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# VanAlign Pro - Neigungsmessung über BLE (SIMULATION)
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#
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# Kopie von esp32_ble.yaml für den Fall, dass gerade kein MPU6050 zum
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# Anschliessen vorhanden ist. Der `platform: mpu6050`-Sensor sowie der
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# i2c-Bus wurden entfernt und durch Template-Sensoren ersetzt, die
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# plausible, sich langsam ändernde Beschleunigungswerte erzeugen (ein
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# gedachter Sensor, der gemütlich hin- und herschaukelt). Pitch/Roll,
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# Kalibrierung und die BLE-Charakteristiken funktionieren dadurch exakt wie
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# im Original - nur eben ohne angeschlossene Hardware.
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#
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# Name und Friendly Name sind bewusst auf "-sim" abgeändert, damit dieses
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# Gerät im Netzwerk/BLE nicht mit einem echten VanAlign-Gerät kollidiert.
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#
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# Sobald wieder ein echter MPU6050 verfügbar ist, einfach esp32_ble.yaml
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# weiterverwenden - diese Datei ist nur zum Testen der App/BLE-Anbindung.
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esphome:
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name: vanalign-sim
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friendly_name: "VanAlign Pro (Sim)"
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esp32:
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board: esp32-s3-devkitc-1
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flash_size: 16MB
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framework:
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type: esp-idf
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# N16R8: 16 MB Flash + 8 MB PSRAM, beim S3 als Octal-PSRAM angebunden.
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psram:
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mode: octal
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speed: 80MHz
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logger:
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level: WARN
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espnow:
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channel: 1
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sensor:
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# Simulierte Rohwerte anstelle des physischen MPU6050. Die Sensor-Lage
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# (Pitch/Roll) wandert langsam und stetig, wie es ein tatsächlich leicht
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# schaukelndes Fahrzeug/Werkstück tun würde (Perioden ~75s/~113s).
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- platform: template
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name: "MPU6050 Accel X (Sim)"
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id: accel_x
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internal: true
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update_interval: 0.1s
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lambda: |-
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float t = millis() / 1000.0f;
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float pitch_rad = (15.0f * sin(t / 12.0f)) * 3.14159265f / 180.0f;
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float roll_rad = (10.0f * sin(t / 18.0f + 1.0f)) * 3.14159265f / 180.0f;
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return -9.80665f * sin(roll_rad) * cos(pitch_rad);
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- platform: template
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name: "MPU6050 Accel Y (Sim)"
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id: accel_y
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internal: true
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update_interval: 0.1s
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lambda: |-
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float t = millis() / 1000.0f;
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float pitch_rad = (15.0f * sin(t / 12.0f)) * 3.14159265f / 180.0f;
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return 9.80665f * sin(pitch_rad);
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- platform: template
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name: "MPU6050 Accel Z (Sim)"
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id: accel_z
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internal: true
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update_interval: 0.1s
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lambda: |-
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float t = millis() / 1000.0f;
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float pitch_rad = (15.0f * sin(t / 12.0f)) * 3.14159265f / 180.0f;
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float roll_rad = (10.0f * sin(t / 18.0f + 1.0f)) * 3.14159265f / 180.0f;
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return 9.80665f * cos(roll_rad) * cos(pitch_rad);
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# Gyro-Werte werden nur zur Anzeige simuliert (kleine Winkelgeschwindigkeit
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# passend zur Schaukelbewegung oben, kein realer Bezug nötig).
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- platform: template
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name: "MPU6050 Gyro X-Achse"
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id: mpu_gyro_x
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update_interval: 0.1s
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lambda: |-
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float t = millis() / 1000.0f;
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return (10.0f / 18.0f) * cos(t / 18.0f + 1.0f) * 3.14159265f / 180.0f;
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- platform: template
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name: "MPU6050 Gyro Y-Achse"
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id: mpu_gyro_y
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update_interval: 0.1s
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lambda: |-
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float t = millis() / 1000.0f;
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return (15.0f / 12.0f) * cos(t / 12.0f) * 3.14159265f / 180.0f;
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- platform: template
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name: "MPU6050 Gyro Z-Achse"
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id: mpu_gyro_z
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update_interval: 0.1s
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lambda: |-
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return 0.0f;
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- platform: template
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name: "Neigung Pitch"
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id: pitch
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icon: mdi:caravan
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unit_of_measurement: "°"
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accuracy_decimals: 1
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update_interval: 0.1s
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lambda: |-
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if (isnan(id(accel_x).state) || isnan(id(accel_y).state) || isnan(id(accel_z).state)) {
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return NAN;
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}
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float raw = atan2(id(accel_y).state, sqrt(pow(id(accel_x).state, 2) + pow(id(accel_z).state, 2))) * (180.0 / 3.14159265);
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return raw - id(pitch_offset); // Offset wird hier subtrahiert
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filters:
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- sliding_window_moving_average:
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window_size: 8
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send_every: 1
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- exponential_moving_average:
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alpha: 0.2
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- platform: template
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name: "Neigung Roll"
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id: roll
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icon: mdi:axis-x-rotate-clockwise
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unit_of_measurement: "°"
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accuracy_decimals: 1
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update_interval: 0.1s
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lambda: |-
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if (isnan(id(accel_x).state) || isnan(id(accel_z).state)) {
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return NAN;
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}
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float raw = atan2(-id(accel_x).state, id(accel_z).state) * (180.0 / 3.14159265);
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return raw - id(roll_offset); // Offset wird hier subtrahiert
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filters:
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- sliding_window_moving_average:
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window_size: 8
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send_every: 1
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- exponential_moving_average:
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alpha: 0.2
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globals:
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- id: pitch_offset
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type: float
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restore_value: yes
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initial_value: '0.0'
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- id: roll_offset
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type: float
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restore_value: yes
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initial_value: '0.0'
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# Die Einbaulage liegt im Gerät, nicht in den Apps: Sie beschreibt, wie der
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# Sensor im Fahrzeug sitzt – eine Eigenschaft des Einbaus, nicht des Telefons.
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# Damit sehen iPhone, Uhr und Android dasselbe, ohne sie je einzeln zu
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# bestimmen. Angewandt wird sie weiterhin in den Apps; das Gerät verwahrt sie
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# nur, sonst rechneten ältere Clients die Korrektur ein zweites Mal.
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- id: orientation_version
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type: uint8_t
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restore_value: yes
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initial_value: '0'
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- id: orientation_source
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type: uint8_t
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restore_value: yes
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initial_value: '0'
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- id: orientation_invert_long
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type: bool
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restore_value: yes
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initial_value: 'false'
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- id: orientation_invert_lat
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type: bool
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restore_value: yes
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initial_value: 'false'
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- id: orientation_twist
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type: float
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restore_value: yes
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initial_value: '0.0'
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- id: enable_captive
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type: bool
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restore_value: yes
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initial_value: 'false'
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esp32_ble_server:
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services:
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- uuid: 2a24b789-7aab-4535-af3e-ee76a35cc42d
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advertise: true
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characteristics:
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- id: pitch_ble
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uuid: cad48e28-7fbe-41cf-bae9-d77a6c233424
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description: "Pitch"
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read: true
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value: !lambda |-
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std::vector<unsigned char> v(sizeof(float));
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float val = id(pitch).state;
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memcpy(v.data(), &val, sizeof(float));
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return v;
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- id: roll_ble
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uuid: cad48e28-7fbe-41cf-bae9-d77a6c233425
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description: "Roll"
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read: true
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value: !lambda |-
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std::vector<unsigned char> v(sizeof(float));
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float val = id(roll).state;
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memcpy(v.data(), &val, sizeof(float));
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return v;
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# Die gespeicherten Nullpunkte, zwei Floats. Daran erkennen die Apps,
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# ob überhaupt schon kalibriert wurde.
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- id: offsets_ble
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uuid: cad48e28-7fbe-41cf-bae9-d77a6c233426
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description: "Kalibrier-Offsets"
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read: true
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value: !lambda |-
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std::vector<unsigned char> v(2 * sizeof(float));
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float p = id(pitch_offset);
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float r = id(roll_offset);
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memcpy(v.data(), &p, sizeof(float));
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memcpy(v.data() + sizeof(float), &r, sizeof(float));
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return v;
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# Die Einbaulage, acht Byte:
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#
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# 0 Version, 1 = gültig gesetzt, 0 = nie geschrieben
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# 1 Längsachse: 0 = Pitch des Sensors, 1 = Roll des Sensors
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# 2 längs umgekehrt (0/1)
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# 3 quer umgekehrt (0/1)
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# 4..7 Verdrehung um die Hochachse, float32, Grad
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- id: orientation_ble
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uuid: cad48e28-7fbe-41cf-bae9-d77a6c233428
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description: "Einbaulage"
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read: true
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write: true
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value: !lambda |-
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std::vector<unsigned char> v(8, 0);
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v[0] = id(orientation_version);
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v[1] = id(orientation_source);
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v[2] = id(orientation_invert_long) ? 1 : 0;
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v[3] = id(orientation_invert_lat) ? 1 : 0;
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float t = id(orientation_twist);
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memcpy(v.data() + 4, &t, sizeof(float));
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return v;
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on_write:
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then:
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- lambda: |-
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if (x.size() < 8 || x[0] != 1) {
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ESP_LOGW("vanalign", "Einbaulage verworfen: %d Byte, Version %d",
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(int) x.size(), x.empty() ? -1 : (int) x[0]);
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return;
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}
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float t;
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memcpy(&t, x.data() + 4, sizeof(float));
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if (!std::isfinite(t) || fabsf(t) > 180.0f) {
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ESP_LOGW("vanalign", "Einbaulage verworfen: Verdrehung %.1f", t);
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return;
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}
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id(orientation_version) = 1;
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id(orientation_source) = x[1];
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id(orientation_invert_long) = x[2] != 0;
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id(orientation_invert_lat) = x[3] != 0;
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id(orientation_twist) = t;
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ESP_LOGI("vanalign", "Einbaulage gespeichert: Quelle=%d laengs=%d quer=%d verdreht=%.1f",
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(int) x[1], (int) x[2], (int) x[3], t);
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- id: calib_ble
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uuid: cad48e28-7fbe-41cf-bae9-d77a6c233427
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description: "Kalibriere Neigung"
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write: true
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on_write:
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then:
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- lambda: |-
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bool reset = !x.empty() && (x[0] == 0x00 || x[0] == '0');
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if (reset) {
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id(reset_calibration).execute();
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} else {
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id(calibrate_level).execute();
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}
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#web_server:
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# port: 80
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#ota:
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# platform: web_server
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#wifi:
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# ap:
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# ssid: "VanAlign-Setup"
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# password: "kalibrierung"
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script:
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# Die aktuelle Lage wird zur neuen Null. Knopf und Bluetooth laufen hier
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# zusammen, damit sie nicht auseinanderdriften.
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- id: calibrate_level
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then:
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- lambda: |-
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if (isnan(id(accel_x).state) || isnan(id(accel_y).state) || isnan(id(accel_z).state)) {
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ESP_LOGW("vanalign", "Kalibrierung abgebrochen: keine Sensorwerte");
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return;
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}
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id(pitch_offset) = atan2(id(accel_y).state, sqrt(pow(id(accel_x).state, 2) + pow(id(accel_z).state, 2))) * (180.0 / 3.14159265);
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id(roll_offset) = atan2(-id(accel_x).state, id(accel_z).state) * (180.0 / 3.14159265);
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ESP_LOGI("vanalign", "Kalibriert: pitch_offset=%.2f roll_offset=%.2f", id(pitch_offset), id(roll_offset));
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- id: reset_calibration
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then:
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- lambda: |-
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id(pitch_offset) = 0.0f;
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id(roll_offset) = 0.0f;
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ESP_LOGI("vanalign", "Kalibrierung zurückgesetzt");
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button:
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- platform: template
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name: "Kalibriere Neigung"
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id: calib_button
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on_press:
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- script.execute: calibrate_level
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- platform: template
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name: "Kalibrierung zurücksetzen"
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id: calib_reset_button
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on_press:
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- script.execute: reset_calibration
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- platform: restart
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name: "ESP Restart"
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text_sensor:
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- platform: template
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name: "Firmware Version"
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id: firmware_version
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icon: mdi:tag
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lambda: |-
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return {"v1.0.2-sim"};
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@@ -0,0 +1,233 @@
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# VanAlign Solar - Votronic Solarladeregler über BLE
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#
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# Zweiter ESP32 im Fahrzeug, unabhängig vom Neigungssensor (esp32_ble.yaml).
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# Liest den Votronic-Solarladeregler über den Displaylink-Port (UART) mit der
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# externen Komponente github://syssi/esphome-votronic aus und stellt die
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# Werte - genau wie beim Neigungssensor - über einen eigenen BLE-Service
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# bereit. Zusätzlich (für Debug-Zwecke) läuft WLAN mit und die Werte werden
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# auch auf dem eingebauten Webserver (Port 80) angezeigt - MQTT und die API
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# sind weiterhin nicht enthalten. WLAN-Zugangsdaten liegen in secrets.yaml
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# (lokal anzulegen, ist per .gitignore ausgeschlossen).
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#
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# Verkabelung: UART TX=GPIO4, RX=GPIO5 an den Displaylink-Port des Reglers,
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# Baudrate 1000 (kein Tippfehler - das Votronic-Protokoll nutzt diese
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# ungewöhnlich niedrige Rate). Board/Pins ggf. an die tatsächlich verbaute
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# Hardware anpassen, hier als ESP32-S3-DevKitC-1 wie beim Neigungssensor
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# angenommen.
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#
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# BLE-Service 05c9a349-2b8e-4b1d-9c9d-c247e9a6a001 (wird beworben):
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#
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# Charakteristik UUID (Ende) Inhalt
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# Batteriespg. ...a101 Float32 LE, Volt
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# PV-Spannung ...a102 Float32 LE, Volt
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# PV-Strom ...a103 Float32 LE, Ampere
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# PV-Leistung ...a104 Float32 LE, Watt
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# Reglertemp. ...a105 Float32 LE, °C
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# Statusflags ...a106 1 Byte, Bitmaske: Bit0 Batterie lädt,
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# Bit1 Batterie entlädt, Bit2 PV-Regler
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# aktiv, Bit3 PV-Strombegrenzung, Bit4 AES
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# PV-Modus-ID ...a107 1 Byte, roher Wert aus pv_mode_setting_id
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# Batteriestatus ...a108 1 Byte, rohe Bitmaske aus dem Regler
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# Reglerstatus ...a109 1 Byte, rohe Bitmaske aus dem Regler
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#
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# Alle Charakteristiken sind reine Lesewerte, wie beim Neigungssensor fragt
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# der Client sie im Takt ab.
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esphome:
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name: vanalign-solar
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friendly_name: "VanAlign Solar"
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esp32:
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board: esp32-s3-devkitc-1
|
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flash_size: 16MB
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framework:
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||||
type: esp-idf
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||||
|
||||
# N16R8: 16 MB Flash + 8 MB PSRAM, beim S3 als Octal-PSRAM angebunden.
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||||
psram:
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mode: octal
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||||
speed: 80MHz
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||||
|
||||
logger:
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level: WARN
|
||||
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||||
wifi:
|
||||
ssid: !secret wifi_ssid
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password: !secret wifi_password
|
||||
|
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web_server:
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port: 80
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external_components:
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- source: github://syssi/esphome-votronic@main
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refresh: 0s
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uart:
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- id: uart_0
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baud_rate: 1000
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tx_pin: GPIO4
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rx_pin: GPIO5
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votronic:
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- id: votronic0
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uart_id: uart_0
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rx_timeout: 150ms
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throttle: 2s
|
||||
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sensor:
|
||||
- platform: votronic
|
||||
votronic_id: votronic0
|
||||
battery_computer_battery_voltage:
|
||||
name: "Batteriespannung"
|
||||
id: battery_voltage
|
||||
pv_voltage:
|
||||
name: "PV Spannung"
|
||||
id: pv_voltage
|
||||
pv_current:
|
||||
name: "PV Strom"
|
||||
id: pv_current
|
||||
pv_power:
|
||||
name: "PV Leistung"
|
||||
id: pv_power
|
||||
pv_controller_temperature:
|
||||
name: "Reglertemperatur"
|
||||
id: pv_temperature
|
||||
pv_mode_setting_id:
|
||||
name: "PV Modus-ID"
|
||||
id: pv_mode_id
|
||||
pv_battery_status_bitmask:
|
||||
name: "PV Batteriestatus (Bitmaske)"
|
||||
id: pv_battery_status_bitmask
|
||||
pv_controller_status_bitmask:
|
||||
name: "PV Reglerstatus (Bitmaske)"
|
||||
id: pv_controller_status_bitmask
|
||||
|
||||
binary_sensor:
|
||||
- platform: votronic
|
||||
votronic_id: votronic0
|
||||
battery_computer_charging:
|
||||
name: "Batterie lädt"
|
||||
id: battery_charging
|
||||
battery_computer_discharging:
|
||||
name: "Batterie entlädt"
|
||||
id: battery_discharging
|
||||
pv_controller_active:
|
||||
name: "PV Regler aktiv"
|
||||
id: pv_active
|
||||
pv_current_reduction:
|
||||
name: "PV Strombegrenzung"
|
||||
id: pv_current_reduction
|
||||
pv_aes_active:
|
||||
name: "PV AES aktiv"
|
||||
id: pv_aes_active
|
||||
|
||||
text_sensor:
|
||||
- platform: votronic
|
||||
votronic_id: votronic0
|
||||
pv_mode_setting:
|
||||
name: "PV Modus"
|
||||
pv_battery_status:
|
||||
name: "PV Batteriestatus"
|
||||
pv_controller_status:
|
||||
name: "PV Reglerstatus"
|
||||
- platform: template
|
||||
name: "Firmware Version"
|
||||
id: firmware_version
|
||||
icon: mdi:tag
|
||||
lambda: |-
|
||||
return {"v1.0.0"};
|
||||
|
||||
esp32_ble_server:
|
||||
services:
|
||||
- uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a001
|
||||
advertise: true
|
||||
characteristics:
|
||||
- id: battery_voltage_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a101
|
||||
description: "Batteriespannung"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(sizeof(float));
|
||||
float val = id(battery_voltage).state;
|
||||
memcpy(v.data(), &val, sizeof(float));
|
||||
return v;
|
||||
- id: pv_voltage_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a102
|
||||
description: "PV Spannung"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(sizeof(float));
|
||||
float val = id(pv_voltage).state;
|
||||
memcpy(v.data(), &val, sizeof(float));
|
||||
return v;
|
||||
- id: pv_current_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a103
|
||||
description: "PV Strom"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(sizeof(float));
|
||||
float val = id(pv_current).state;
|
||||
memcpy(v.data(), &val, sizeof(float));
|
||||
return v;
|
||||
- id: pv_power_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a104
|
||||
description: "PV Leistung"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(sizeof(float));
|
||||
float val = id(pv_power).state;
|
||||
memcpy(v.data(), &val, sizeof(float));
|
||||
return v;
|
||||
- id: pv_temperature_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a105
|
||||
description: "Reglertemperatur"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(sizeof(float));
|
||||
float val = id(pv_temperature).state;
|
||||
memcpy(v.data(), &val, sizeof(float));
|
||||
return v;
|
||||
# Bit0 Batterie lädt, Bit1 Batterie entlädt, Bit2 PV-Regler aktiv,
|
||||
# Bit3 PV-Strombegrenzung, Bit4 AES aktiv.
|
||||
- id: status_flags_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a106
|
||||
description: "Statusflags"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(1, 0);
|
||||
uint8_t flags = 0;
|
||||
if (id(battery_charging).state) flags |= (1 << 0);
|
||||
if (id(battery_discharging).state) flags |= (1 << 1);
|
||||
if (id(pv_active).state) flags |= (1 << 2);
|
||||
if (id(pv_current_reduction).state) flags |= (1 << 3);
|
||||
if (id(pv_aes_active).state) flags |= (1 << 4);
|
||||
v[0] = flags;
|
||||
return v;
|
||||
- id: pv_mode_id_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a107
|
||||
description: "PV Modus-ID"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(1, 0);
|
||||
v[0] = (uint8_t) id(pv_mode_id).state;
|
||||
return v;
|
||||
- id: pv_battery_status_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a108
|
||||
description: "PV Batteriestatus (Bitmaske)"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(1, 0);
|
||||
v[0] = (uint8_t) id(pv_battery_status_bitmask).state;
|
||||
return v;
|
||||
- id: pv_controller_status_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a109
|
||||
description: "PV Reglerstatus (Bitmaske)"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(1, 0);
|
||||
v[0] = (uint8_t) id(pv_controller_status_bitmask).state;
|
||||
return v;
|
||||
|
||||
button:
|
||||
- platform: restart
|
||||
name: "ESP Restart"
|
||||
@@ -0,0 +1,265 @@
|
||||
# VanAlign Solar - Votronic Solarladeregler über BLE (SIMULATION)
|
||||
#
|
||||
# Kopie von esp32_ble_solar.yaml für den Fall, dass gerade kein Votronic-
|
||||
# Regler zum Anschliessen vorhanden ist. Die `platform: votronic`-Sensoren
|
||||
# sowie UART/external_components wurden entfernt und durch Template-Sensoren
|
||||
# ersetzt, die einen plausiblen Tagesverlauf simulieren: PV-Spannung/-Strom
|
||||
# folgen einem "Sonnenstand" (ein gedachter, ca. 6 Minuten langer Tag), die
|
||||
# Batteriespannung schwankt gemütlich mit, und die Statusflags/Bitmasken
|
||||
# leiten sich aus diesen Werten ab. Die BLE-Charakteristiken funktionieren
|
||||
# dadurch exakt wie im Original - nur eben ohne angeschlossene Hardware.
|
||||
#
|
||||
# Name und Friendly Name sind bewusst auf "-sim" abgeändert, damit dieses
|
||||
# Gerät im BLE-Umfeld nicht mit einem echten VanAlign-Solar-Gerät kollidiert.
|
||||
#
|
||||
# Für Debug-Zwecke läuft WLAN mit und die Werte werden zusätzlich auf dem
|
||||
# eingebauten Webserver (Port 80) angezeigt; WLAN-Zugangsdaten liegen in
|
||||
# secrets.yaml (lokal anzulegen, ist per .gitignore ausgeschlossen). Alle
|
||||
# simulierten Werte aktualisieren sich höchstens jede Sekunde, damit sich
|
||||
# Änderungen beim Debuggen zügig zeigen.
|
||||
#
|
||||
# Sobald wieder ein echter Votronic-Regler verfügbar ist, einfach
|
||||
# esp32_ble_solar.yaml weiterverwenden - diese Datei ist nur zum Testen der
|
||||
# App/BLE-Anbindung.
|
||||
|
||||
esphome:
|
||||
name: vanalign-solar-sim
|
||||
friendly_name: "VanAlign Solar (Sim)"
|
||||
|
||||
esp32:
|
||||
board: esp32-s3-devkitc-1
|
||||
flash_size: 16MB
|
||||
framework:
|
||||
type: esp-idf
|
||||
|
||||
# N16R8: 16 MB Flash + 8 MB PSRAM, beim S3 als Octal-PSRAM angebunden.
|
||||
psram:
|
||||
mode: octal
|
||||
speed: 80MHz
|
||||
|
||||
logger:
|
||||
level: WARN
|
||||
|
||||
wifi:
|
||||
ssid: !secret wifi_ssid
|
||||
password: !secret wifi_password
|
||||
|
||||
web_server:
|
||||
port: 80
|
||||
|
||||
sensor:
|
||||
# Simulierter "Sonnenstand": 0 nachts, sanfter Buckel tagsüber, Periode
|
||||
# ca. 6 Minuten - reicht zum Beobachten eines vollen Auf/Ab in der App.
|
||||
- platform: template
|
||||
name: "Sonnenstand (Sim)"
|
||||
id: sun_level
|
||||
internal: true
|
||||
update_interval: 1s
|
||||
lambda: |-
|
||||
float t = millis() / 1000.0f;
|
||||
return std::max(0.0f, sinf(t / 180.0f));
|
||||
|
||||
- platform: template
|
||||
name: "Batteriespannung (Sim)"
|
||||
id: battery_voltage
|
||||
unit_of_measurement: "V"
|
||||
accuracy_decimals: 2
|
||||
update_interval: 1s
|
||||
lambda: |-
|
||||
float t = millis() / 1000.0f;
|
||||
return 12.6f + 0.8f * id(sun_level).state + 0.05f * sin(t / 20.0f);
|
||||
|
||||
- platform: template
|
||||
name: "PV Spannung (Sim)"
|
||||
id: pv_voltage
|
||||
unit_of_measurement: "V"
|
||||
accuracy_decimals: 2
|
||||
update_interval: 1s
|
||||
lambda: |-
|
||||
float t = millis() / 1000.0f;
|
||||
return id(sun_level).state > 0.01f ? (19.0f + 1.0f * sin(t / 25.0f)) : 0.0f;
|
||||
|
||||
- platform: template
|
||||
name: "PV Strom (Sim)"
|
||||
id: pv_current
|
||||
unit_of_measurement: "A"
|
||||
accuracy_decimals: 2
|
||||
update_interval: 1s
|
||||
lambda: |-
|
||||
float t = millis() / 1000.0f;
|
||||
return id(sun_level).state * (6.0f + 1.5f * sin(t / 17.0f));
|
||||
|
||||
- platform: template
|
||||
name: "PV Leistung (Sim)"
|
||||
id: pv_power
|
||||
unit_of_measurement: "W"
|
||||
accuracy_decimals: 1
|
||||
update_interval: 1s
|
||||
lambda: |-
|
||||
return id(pv_voltage).state * id(pv_current).state;
|
||||
|
||||
- platform: template
|
||||
name: "Reglertemperatur (Sim)"
|
||||
id: pv_temperature
|
||||
unit_of_measurement: "°C"
|
||||
accuracy_decimals: 1
|
||||
update_interval: 1s
|
||||
lambda: |-
|
||||
float t = millis() / 1000.0f;
|
||||
return 22.0f + 10.0f * id(sun_level).state + 1.0f * sin(t / 11.0f);
|
||||
|
||||
- platform: template
|
||||
name: "PV Modus-ID (Sim)"
|
||||
id: pv_mode_id
|
||||
update_interval: 1s
|
||||
lambda: |-
|
||||
return 3.0f; // fester simulierter Modus (MPPT)
|
||||
|
||||
- platform: template
|
||||
name: "PV Batteriestatus (Bitmaske, Sim)"
|
||||
id: pv_battery_status_bitmask
|
||||
update_interval: 1s
|
||||
lambda: |-
|
||||
return id(sun_level).state > 0.01f ? 1.0f : 0.0f;
|
||||
|
||||
- platform: template
|
||||
name: "PV Reglerstatus (Bitmaske, Sim)"
|
||||
id: pv_controller_status_bitmask
|
||||
update_interval: 1s
|
||||
lambda: |-
|
||||
return id(sun_level).state > 0.01f ? 2.0f : 0.0f;
|
||||
|
||||
binary_sensor:
|
||||
- platform: template
|
||||
name: "Batterie lädt (Sim)"
|
||||
id: battery_charging
|
||||
lambda: |-
|
||||
return id(pv_current).state > 0.2f;
|
||||
|
||||
- platform: template
|
||||
name: "Batterie entlädt (Sim)"
|
||||
id: battery_discharging
|
||||
lambda: |-
|
||||
return id(pv_current).state <= 0.2f;
|
||||
|
||||
- platform: template
|
||||
name: "PV Regler aktiv (Sim)"
|
||||
id: pv_active
|
||||
lambda: |-
|
||||
return id(sun_level).state > 0.01f;
|
||||
|
||||
- platform: template
|
||||
name: "PV Strombegrenzung (Sim)"
|
||||
id: pv_current_reduction
|
||||
lambda: |-
|
||||
float t = millis() / 1000.0f;
|
||||
return id(pv_active).state && sin(t / 60.0f) > 0.9f;
|
||||
|
||||
- platform: template
|
||||
name: "PV AES aktiv (Sim)"
|
||||
id: pv_aes_active
|
||||
lambda: |-
|
||||
return id(battery_voltage).state > 13.3f;
|
||||
|
||||
text_sensor:
|
||||
- platform: template
|
||||
name: "Firmware Version"
|
||||
id: firmware_version
|
||||
icon: mdi:tag
|
||||
lambda: |-
|
||||
return {"v1.0.0-sim"};
|
||||
|
||||
esp32_ble_server:
|
||||
services:
|
||||
- uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a001
|
||||
advertise: true
|
||||
characteristics:
|
||||
- id: battery_voltage_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a101
|
||||
description: "Batteriespannung"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(sizeof(float));
|
||||
float val = id(battery_voltage).state;
|
||||
memcpy(v.data(), &val, sizeof(float));
|
||||
return v;
|
||||
- id: pv_voltage_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a102
|
||||
description: "PV Spannung"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(sizeof(float));
|
||||
float val = id(pv_voltage).state;
|
||||
memcpy(v.data(), &val, sizeof(float));
|
||||
return v;
|
||||
- id: pv_current_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a103
|
||||
description: "PV Strom"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(sizeof(float));
|
||||
float val = id(pv_current).state;
|
||||
memcpy(v.data(), &val, sizeof(float));
|
||||
return v;
|
||||
- id: pv_power_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a104
|
||||
description: "PV Leistung"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(sizeof(float));
|
||||
float val = id(pv_power).state;
|
||||
memcpy(v.data(), &val, sizeof(float));
|
||||
return v;
|
||||
- id: pv_temperature_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a105
|
||||
description: "Reglertemperatur"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(sizeof(float));
|
||||
float val = id(pv_temperature).state;
|
||||
memcpy(v.data(), &val, sizeof(float));
|
||||
return v;
|
||||
# Bit0 Batterie lädt, Bit1 Batterie entlädt, Bit2 PV-Regler aktiv,
|
||||
# Bit3 PV-Strombegrenzung, Bit4 AES aktiv.
|
||||
- id: status_flags_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a106
|
||||
description: "Statusflags"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(1, 0);
|
||||
uint8_t flags = 0;
|
||||
if (id(battery_charging).state) flags |= (1 << 0);
|
||||
if (id(battery_discharging).state) flags |= (1 << 1);
|
||||
if (id(pv_active).state) flags |= (1 << 2);
|
||||
if (id(pv_current_reduction).state) flags |= (1 << 3);
|
||||
if (id(pv_aes_active).state) flags |= (1 << 4);
|
||||
v[0] = flags;
|
||||
return v;
|
||||
- id: pv_mode_id_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a107
|
||||
description: "PV Modus-ID"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(1, 0);
|
||||
v[0] = (uint8_t) id(pv_mode_id).state;
|
||||
return v;
|
||||
- id: pv_battery_status_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a108
|
||||
description: "PV Batteriestatus (Bitmaske)"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(1, 0);
|
||||
v[0] = (uint8_t) id(pv_battery_status_bitmask).state;
|
||||
return v;
|
||||
- id: pv_controller_status_ble
|
||||
uuid: 05c9a349-2b8e-4b1d-9c9d-c247e9a6a109
|
||||
description: "PV Reglerstatus (Bitmaske)"
|
||||
read: true
|
||||
value: !lambda |-
|
||||
std::vector<unsigned char> v(1, 0);
|
||||
v[0] = (uint8_t) id(pv_controller_status_bitmask).state;
|
||||
return v;
|
||||
|
||||
button:
|
||||
- platform: restart
|
||||
name: "ESP Restart"
|
||||
Reference in New Issue
Block a user