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EOS/docs/_generated/configdevices.md
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Bobby Noelte 6ebd343047 feat: adapt configuration for multi optimization algorithms
Decouple configuration from optimization algorithm parameters. Add to_[algorithm]_param() methods
to the configuration that derive optimization algorithm specific parameters from the configuration.
Add x-scope tags to the configuration options that describe for which specific algorithms the
configuration option is for.

The whole device settings are restructured. There are now general settings for the device classes
with the afore mentioned to_[algorithm]_param() methods. The general device settings got their own
directory `devices/settings`. By this the parameter class also does not have to be a pydantic model
which can be used for future optimization/ simulations speed up.

Also the parameter class for a device is now part of the device module. This better decouples and
also is the natural place for parameters of a device.

Besides this feature there are also fixes and improvements:

* feat: extend home appliance time window settings and simulation

  Home appliance can now be configured for multiple runs with per-cycle allowed time windows. The
  number of remaining cycles to plan is determined at runtime by reading the
  ``cycles_completed_measurement_key`` from the measurement store.

* feat: specialiced CycleTimeWindowSequence for time window sequences

  Sequence of time windows associated to cycles.

  This model specializes ``ValueTimeWindowSequence`` so that the ``value``
  field of each ``ValueTimeWindow`` encodes the **cycle index** (0-based
  integer) the window belongs to.

  Typical use: an appliance that must run ``n`` times per day, each run
  constrained to a distinct time window.  Assign ``value=0`` to windows
  for the first cycle, ``value=1`` for the second, and so on.  Multiple
  windows may share the same cycle index (their allowed regions are unioned).
  Windows with ``value=None`` are silently ignored by all cycle-aware methods.

* fix: Make test_configmigrate also regard the _ANY_SENTENIEL in key values

* chore: Make devices configurations a map instead of a list

  This makes config paths stable regardless of declaration order and lets each device settings
  class build its own config path from ``self.device_id`` without needing an external index.
  Tests are adapted likewise.

  Devices configurations are automatically migrated from lists to maps.

* chore: rename levelized_cost_of_storage_kwh to levelized_cost_of_storage_amt kwh

  This better fits in the naming scheme and also makes clear the costs are money.

Signed-off-by: Bobby Noelte <b0661n0e17e@gmail.com>
2026-08-25 15:18:00 +02:00

8.7 KiB

Configuration for all controllable devices in the simulation

Every device collection is a dict[str, <Settings>] keyed by device_id. This makes config paths stable regardless of declaration order and lets each device settings class build its own config path from self.device_id without needing an external index.

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

Name Environment Variable Type Read-Only Default Description
batteries EOS_DEVICES__BATTERIES `dict[str, akkudoktoreos.devices.settings.batterysettings.BatteriesCommonSettings] None` rw None
electric_vehicles EOS_DEVICES__ELECTRIC_VEHICLES `dict[str, akkudoktoreos.devices.settings.batterysettings.BatteriesCommonSettings] None` rw None
home_appliances EOS_DEVICES__HOME_APPLIANCES dict[str, akkudoktoreos.devices.settings.homeappliancesettings.HomeApplianceCommonSettings] rw required Shiftable home appliance devices, keyed by device_id.
inverters EOS_DEVICES__INVERTERS `dict[str, akkudoktoreos.devices.settings.invertersettings.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] ro N/A All measurement keys across all configured devices.
:::

Example Input

   {
       "devices": {
           "batteries": {
               "bat0": {
                   "device_id": "bat0",
                   "capacity_wh": 8000,
                   "charging_efficiency": 0.88,
                   "discharging_efficiency": 0.88,
                   "levelized_cost_of_storage_amt_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": {
               "ev0": {
                   "device_id": "ev0",
                   "capacity_wh": 60000,
                   "charging_efficiency": 0.88,
                   "discharging_efficiency": 0.88,
                   "levelized_cost_of_storage_amt_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": {
               "dishwasher": {
                   "device_id": "dishwasher",
                   "consumption_wh": 1500,
                   "duration_h": 2,
                   "num_cycles": 1,
                   "cycle_time_windows": null,
                   "min_cycle_gap_h": 0,
                   "cycles_completed_measurement_key": null
               }
           },
           "max_home_appliances": 3
       }
   }

Example Output

   {
       "devices": {
           "batteries": {
               "bat0": {
                   "device_id": "bat0",
                   "capacity_wh": 8000,
                   "charging_efficiency": 0.88,
                   "discharging_efficiency": 0.88,
                   "levelized_cost_of_storage_amt_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": "bat0-soc-factor",
                   "measurement_key_power_l1_w": "bat0-power-l1-w",
                   "measurement_key_power_l2_w": "bat0-power-l2-w",
                   "measurement_key_power_l3_w": "bat0-power-l3-w",
                   "measurement_key_power_3_phase_sym_w": "bat0-power-3-phase-sym-w",
                   "measurement_keys": [
                       "bat0-soc-factor",
                       "bat0-power-l1-w",
                       "bat0-power-l2-w",
                       "bat0-power-l3-w",
                       "bat0-power-3-phase-sym-w"
                   ]
               }
           },
           "max_batteries": 1,
           "electric_vehicles": {
               "ev0": {
                   "device_id": "ev0",
                   "capacity_wh": 60000,
                   "charging_efficiency": 0.88,
                   "discharging_efficiency": 0.88,
                   "levelized_cost_of_storage_amt_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": "ev0-soc-factor",
                   "measurement_key_power_l1_w": "ev0-power-l1-w",
                   "measurement_key_power_l2_w": "ev0-power-l2-w",
                   "measurement_key_power_l3_w": "ev0-power-l3-w",
                   "measurement_key_power_3_phase_sym_w": "ev0-power-3-phase-sym-w",
                   "measurement_keys": [
                       "ev0-soc-factor",
                       "ev0-power-l1-w",
                       "ev0-power-l2-w",
                       "ev0-power-l3-w",
                       "ev0-power-3-phase-sym-w"
                   ]
               }
           },
           "max_electric_vehicles": 1,
           "inverters": {},
           "max_inverters": 1,
           "home_appliances": {
               "dishwasher": {
                   "device_id": "dishwasher",
                   "consumption_wh": 1500,
                   "duration_h": 2,
                   "num_cycles": 1,
                   "cycle_time_windows": null,
                   "min_cycle_gap_h": 0,
                   "cycles_completed_measurement_key": null,
                   "effective_num_cycles": 1,
                   "measurement_keys": []
               }
           },
           "max_home_appliances": 3,
           "measurement_keys": [
               "bat0-soc-factor",
               "bat0-power-l1-w",
               "bat0-power-l2-w",
               "bat0-power-l3-w",
               "bat0-power-3-phase-sym-w",
               "ev0-soc-factor",
               "ev0-power-l1-w",
               "ev0-power-l2-w",
               "ev0-power-l3-w",
               "ev0-power-3-phase-sym-w"
           ]
       }
   }