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EOS/tests/testdata/docs/_generated/configdevices.md
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Bobby NoelteandGitHub 894790f577 feat: add pvlib pv forecast provider (#1214)
Add a PV forecast provider that calculates the forecast using a PVLib system model
and weather forecast from the EOS weather forecast provider.

Additional module and inverter models can be easily added as the database
is build from PVLib and SAM databases and a bundled csv file.

The module model and inververt model names are provided by new endpoints
to be used in configuration.

The provider is based on the fantastic work of EMHASS. See
https://github.com/davidusb-geek/emhass/blob/master/src/emhass/forecast.py

A short description of the provider is added to the documentation.

Besides the new features there are the fixes and improvements:

* feat: improve EOSdash config page

* fix: kex_to_series for start_datetime

  Make key_to_series always start the series at start_datetime.

* fix: default provider for GENETIC and GENETIC0 optimization

  To make the default less dependent on internet servers (with API changes and
  availability issues) the default for PVForecast is set to PVForecastPVLib
  and for ElecPrice to ElecPriceFixed. The default weather provider is changed
  to OpenMeteo.

* fix: EOSdash display resampled prediction values

  Make EOSdash display resampled prediction values where  resampling fits to
  the prediction value type. Use bar width that fits to 15 minutes value samples.

* chore: add a UI hints system to EOSdash

  The UI hints system eases the definition of forms for configuration items.
  There are also forms for items in maps and lists. These forms allow to add and delete
  items to/ from  maps and lists. The forms ensure that all required fields of newly
  added items are filled.

* chore: Create an enum for valid optimization algorithms

* chore. Make config also provide the available energy management modes.

  Used for configuration hints.

* chore: Randomize default device id in configuration

Signed-off-by: Bobby Noelte <b0661n0e17e@gmail.com>
2026-08-07 13:13:17 +02:00

21 KiB

Base configuration for devices simulation settings

:::{table} devices :widths: 10 20 10 5 5 30 :align: left

Name Environment Variable Type Read-Only Default Description
batteries EOS_DEVICES__BATTERIES `list[akkudoktoreos.devices.devices.BatteriesCommonSettings] None` rw None
electric_vehicles EOS_DEVICES__ELECTRIC_VEHICLES `list[akkudoktoreos.devices.devices.BatteriesCommonSettings] None` rw None
home_appliances EOS_DEVICES__HOME_APPLIANCES `list[akkudoktoreos.devices.devices.HomeApplianceCommonSettings] None` rw None
inverters EOS_DEVICES__INVERTERS `list[akkudoktoreos.devices.devices.InverterCommonSettings] None` rw None
max_batteries EOS_DEVICES__MAX_BATTERIES `int None` rw None
max_electric_vehicles EOS_DEVICES__MAX_ELECTRIC_VEHICLES `int None` rw None
max_home_appliances EOS_DEVICES__MAX_HOME_APPLIANCES `int None` rw None
max_inverters EOS_DEVICES__MAX_INVERTERS `int None` rw None
measurement_keys `list[str] None` ro N/A
:::

Example Input

   {
       "devices": {
           "batteries": [
               {
                   "device_id": "battery1",
                   "capacity_wh": 8000,
                   "charging_efficiency": 0.88,
                   "discharging_efficiency": 0.88,
                   "levelized_cost_of_storage_kwh": 0.0,
                   "max_charge_power_w": 5000,
                   "min_charge_power_w": 50,
                   "charge_rates": [
                       0.0,
                       0.1,
                       0.2,
                       0.3,
                       0.4,
                       0.5,
                       0.6,
                       0.7,
                       0.8,
                       0.9,
                       1.0
                   ],
                   "min_soc_percentage": 0,
                   "max_soc_percentage": 100
               }
           ],
           "max_batteries": 1,
           "electric_vehicles": [
               {
                   "device_id": "battery1",
                   "capacity_wh": 8000,
                   "charging_efficiency": 0.88,
                   "discharging_efficiency": 0.88,
                   "levelized_cost_of_storage_kwh": 0.0,
                   "max_charge_power_w": 5000,
                   "min_charge_power_w": 50,
                   "charge_rates": [
                       0.0,
                       0.1,
                       0.2,
                       0.3,
                       0.4,
                       0.5,
                       0.6,
                       0.7,
                       0.8,
                       0.9,
                       1.0
                   ],
                   "min_soc_percentage": 0,
                   "max_soc_percentage": 100
               }
           ],
           "max_electric_vehicles": 1,
           "inverters": [],
           "max_inverters": 1,
           "home_appliances": [],
           "max_home_appliances": 1
       }
   }

Example Output

   {
       "devices": {
           "batteries": [
               {
                   "device_id": "battery1",
                   "capacity_wh": 8000,
                   "charging_efficiency": 0.88,
                   "discharging_efficiency": 0.88,
                   "levelized_cost_of_storage_kwh": 0.0,
                   "max_charge_power_w": 5000,
                   "min_charge_power_w": 50,
                   "charge_rates": [
                       0.0,
                       0.1,
                       0.2,
                       0.3,
                       0.4,
                       0.5,
                       0.6,
                       0.7,
                       0.8,
                       0.9,
                       1.0
                   ],
                   "min_soc_percentage": 0,
                   "max_soc_percentage": 100,
                   "measurement_key_soc_factor": "battery1-soc-factor",
                   "measurement_key_power_l1_w": "battery1-power-l1-w",
                   "measurement_key_power_l2_w": "battery1-power-l2-w",
                   "measurement_key_power_l3_w": "battery1-power-l3-w",
                   "measurement_key_power_3_phase_sym_w": "battery1-power-3-phase-sym-w",
                   "measurement_keys": [
                       "battery1-soc-factor",
                       "battery1-power-l1-w",
                       "battery1-power-l2-w",
                       "battery1-power-l3-w",
                       "battery1-power-3-phase-sym-w"
                   ]
               }
           ],
           "max_batteries": 1,
           "electric_vehicles": [
               {
                   "device_id": "battery1",
                   "capacity_wh": 8000,
                   "charging_efficiency": 0.88,
                   "discharging_efficiency": 0.88,
                   "levelized_cost_of_storage_kwh": 0.0,
                   "max_charge_power_w": 5000,
                   "min_charge_power_w": 50,
                   "charge_rates": [
                       0.0,
                       0.1,
                       0.2,
                       0.3,
                       0.4,
                       0.5,
                       0.6,
                       0.7,
                       0.8,
                       0.9,
                       1.0
                   ],
                   "min_soc_percentage": 0,
                   "max_soc_percentage": 100,
                   "measurement_key_soc_factor": "battery1-soc-factor",
                   "measurement_key_power_l1_w": "battery1-power-l1-w",
                   "measurement_key_power_l2_w": "battery1-power-l2-w",
                   "measurement_key_power_l3_w": "battery1-power-l3-w",
                   "measurement_key_power_3_phase_sym_w": "battery1-power-3-phase-sym-w",
                   "measurement_keys": [
                       "battery1-soc-factor",
                       "battery1-power-l1-w",
                       "battery1-power-l2-w",
                       "battery1-power-l3-w",
                       "battery1-power-3-phase-sym-w"
                   ]
               }
           ],
           "max_electric_vehicles": 1,
           "inverters": [],
           "max_inverters": 1,
           "home_appliances": [],
           "max_home_appliances": 1,
           "measurement_keys": [
               "battery1-soc-factor",
               "battery1-power-l1-w",
               "battery1-power-l2-w",
               "battery1-power-l3-w",
               "battery1-power-3-phase-sym-w",
               "battery1-soc-factor",
               "battery1-power-l1-w",
               "battery1-power-l2-w",
               "battery1-power-l3-w",
               "battery1-power-3-phase-sym-w"
           ]
       }
   }

Inverter devices base settings

:::{table} devices::inverters::list :widths: 10 10 5 5 30 :align: left

Name Type Read-Only Default Description
ac_to_dc_efficiency float rw 1.0 Efficiency of AC to DC conversion for grid-to-battery AC charging (0-1). Set to 0 to disable AC charging. Default 1.0 (no additional inverter loss).
battery_id `str None` rw None
dc_to_ac_efficiency float rw 1.0 Efficiency of DC to AC conversion for battery discharging to AC load/grid (0-1). Default 1.0 (no additional inverter loss).
device_id str rw required ID of device
max_ac_charge_power_w `float None` rw None
max_power_w `float None` rw None
measurement_keys `list[str] None` ro N/A
:::

Example Input

   {
       "devices": {
           "inverters": [
               {
                   "device_id": "battery1",
                   "max_power_w": 10000.0,
                   "battery_id": null,
                   "ac_to_dc_efficiency": 0.95,
                   "dc_to_ac_efficiency": 0.95,
                   "max_ac_charge_power_w": null
               }
           ]
       }
   }

Example Output

   {
       "devices": {
           "inverters": [
               {
                   "device_id": "battery1",
                   "max_power_w": 10000.0,
                   "battery_id": null,
                   "ac_to_dc_efficiency": 0.95,
                   "dc_to_ac_efficiency": 0.95,
                   "max_ac_charge_power_w": null,
                   "measurement_keys": []
               }
           ]
       }
   }

Model defining a daily or date time window with optional localization support

Represents a time interval starting at start_time and lasting for duration. Can restrict applicability to a specific day of the week or a specific calendar date. Supports day names in multiple languages via locale-aware parsing.

Timezone contract:

start_time is always naive (no tzinfo). It is interpreted as a local wall-clock time in whatever timezone the caller's date_time or reference_date carries. When those arguments are timezone-aware the window boundaries are evaluated in that timezone; when they are naive, arithmetic is performed as-is (no timezone conversion occurs).

date, being a calendar Date object, is inherently timezone-free.

This design avoids the ambiguity that arises when a stored start_time carries its own timezone that differs from the caller's timezone, and keeps the model serialisable without timezone state.

:::{table} devices::home_appliances::list::time_windows::windows::list :widths: 10 10 5 5 30 :align: left

Name Type Read-Only Default Description
date `pydantic_extra_types.pendulum_dt.Date None` rw None
day_of_week `int str None` rw
duration Duration rw required Duration of the time window starting from start_time.
locale `str None` rw None
start_time Time rw required Naive start time of the time window (time of day, no timezone). Interpreted in the timezone of the datetime passed to contains() or earliest_start_time().
:::

Example Input/Output

   {
       "devices": {
           "home_appliances": [
               {
                   "time_windows": {
                       "windows": [
                           {
                               "start_time": "00:00:00.000000",
                               "duration": "2 hours",
                               "day_of_week": null,
                               "date": null,
                               "locale": null
                           }
                       ]
                   }
               }
           ]
       }
   }

Model representing a sequence of time windows with collective operations

Manages multiple TimeWindow objects and provides methods to work with them as a cohesive unit for scheduling and availability checking.

:::{table} devices::home_appliances::list::time_windows :widths: 10 10 5 5 30 :align: left

Name Type Read-Only Default Description
windows list[akkudoktoreos.config.configabc.TimeWindow] rw required List of TimeWindow objects that make up this sequence.
:::

Example Input/Output

   {
       "devices": {
           "home_appliances": [
               {
                   "time_windows": {
                       "windows": []
                   }
               }
           ]
       }
   }

Home Appliance devices base settings

:::{table} devices::home_appliances::list :widths: 10 10 5 5 30 :align: left

Name Type Read-Only Default Description
consumption_wh int rw required Energy consumption [Wh].
device_id str rw required ID of device
duration_h int rw required Usage duration in hours [0 ... 24].
measurement_keys `list[str] None` ro N/A
time_windows `akkudoktoreos.config.configabc.TimeWindowSequence None` rw None
:::

Example Input

   {
       "devices": {
           "home_appliances": [
               {
                   "device_id": "battery1",
                   "consumption_wh": 2000,
                   "duration_h": 1,
                   "time_windows": {
                       "windows": [
                           {
                               "start_time": "10:00:00.000000",
                               "duration": "2 hours",
                               "day_of_week": null,
                               "date": null,
                               "locale": null
                           }
                       ]
                   }
               }
           ]
       }
   }

Example Output

   {
       "devices": {
           "home_appliances": [
               {
                   "device_id": "battery1",
                   "consumption_wh": 2000,
                   "duration_h": 1,
                   "time_windows": {
                       "windows": [
                           {
                               "start_time": "10:00:00.000000",
                               "duration": "2 hours",
                               "day_of_week": null,
                               "date": null,
                               "locale": null
                           }
                       ]
                   },
                   "measurement_keys": []
               }
           ]
       }
   }

Battery devices base settings

:::{table} devices::batteries::list :widths: 10 10 5 5 30 :align: left

Name Type Read-Only Default Description
capacity_wh int rw 8000 Capacity [Wh].
charge_rates `list[float] None` rw [0.0, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0]
charging_efficiency float rw 0.88 Charging efficiency [0.01 ... 1.00].
device_id str rw required ID of device
discharging_efficiency float rw 0.88 Discharge efficiency [0.01 ... 1.00].
levelized_cost_of_storage_kwh float rw 0.0 Levelized cost of storage (LCOS), the average lifetime cost of delivering one kWh [amount/kWh].
max_charge_power_w `float None` rw 5000
max_soc_percentage int rw 100 Maximum state of charge (SOC) as percentage of capacity [%].
measurement_key_power_3_phase_sym_w str ro N/A Measurement key for the symmetric 3 phase power the battery is charged or discharged with [W].
measurement_key_power_l1_w str ro N/A Measurement key for the L1 power the battery is charged or discharged with [W].
measurement_key_power_l2_w str ro N/A Measurement key for the L2 power the battery is charged or discharged with [W].
measurement_key_power_l3_w str ro N/A Measurement key for the L3 power the battery is charged or discharged with [W].
measurement_key_soc_factor str ro N/A Measurement key for the battery state of charge (SoC) as factor of total capacity [0.0 ... 1.0].
measurement_keys `list[str] None` ro N/A
min_charge_power_w `float None` rw 50
min_soc_percentage int rw 0 Minimum state of charge (SOC) as percentage of capacity [%]. This is the target SoC for charging
:::

Example Input

   {
       "devices": {
           "batteries": [
               {
                   "device_id": "battery1",
                   "capacity_wh": 8000,
                   "charging_efficiency": 0.88,
                   "discharging_efficiency": 0.88,
                   "levelized_cost_of_storage_kwh": 0.12,
                   "max_charge_power_w": 5000.0,
                   "min_charge_power_w": 50.0,
                   "charge_rates": [
                       0.0,
                       0.25,
                       0.5,
                       0.75,
                       1.0
                   ],
                   "min_soc_percentage": 10,
                   "max_soc_percentage": 100
               }
           ]
       }
   }

Example Output

   {
       "devices": {
           "batteries": [
               {
                   "device_id": "battery1",
                   "capacity_wh": 8000,
                   "charging_efficiency": 0.88,
                   "discharging_efficiency": 0.88,
                   "levelized_cost_of_storage_kwh": 0.12,
                   "max_charge_power_w": 5000.0,
                   "min_charge_power_w": 50.0,
                   "charge_rates": [
                       0.0,
                       0.25,
                       0.5,
                       0.75,
                       1.0
                   ],
                   "min_soc_percentage": 10,
                   "max_soc_percentage": 100,
                   "measurement_key_soc_factor": "battery1-soc-factor",
                   "measurement_key_power_l1_w": "battery1-power-l1-w",
                   "measurement_key_power_l2_w": "battery1-power-l2-w",
                   "measurement_key_power_l3_w": "battery1-power-l3-w",
                   "measurement_key_power_3_phase_sym_w": "battery1-power-3-phase-sym-w",
                   "measurement_keys": [
                       "battery1-soc-factor",
                       "battery1-power-l1-w",
                       "battery1-power-l2-w",
                       "battery1-power-l3-w",
                       "battery1-power-3-phase-sym-w"
                   ]
               }
           ]
       }
   }