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7 Commits
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512e6e2282 | |||
c4852ee9b7 | |||
97bc73e526 | |||
3d49fbcfdf | |||
e71afa4ff9 | |||
7baff0b846 | |||
4e8d09c067 |
2
.gitignore
vendored
2
.gitignore
vendored
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@ -1 +1,3 @@
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.idea
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cerc_costs.egg-info
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dist
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@ -1,9 +0,0 @@
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Metadata-Version: 2.1
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Name: cerc-costs
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Version: 0.1.0.2
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Summary: CERC costs contains the basic cost calculation per CERC-Hub building
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Classifier: License :: OSI Approved :: GNU Library or Lesser General Public License (LGPL)
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Classifier: Programming Language :: Python
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Classifier: Programming Language :: Python :: 3
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CERC costs contains the basic cost calculation per CERC-Hub building
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@ -1,22 +0,0 @@
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README.md
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pyproject.toml
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requirements.txt
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setup.py
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cerc_costs.egg-info/PKG-INFO
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cerc_costs.egg-info/SOURCES.txt
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cerc_costs.egg-info/dependency_links.txt
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cerc_costs.egg-info/requires.txt
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cerc_costs.egg-info/top_level.txt
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costs/__init__.py
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costs/__main__.py
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costs/capital_costs.py
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costs/configuration.py
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costs/constants.py
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costs/cost.py
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costs/cost_base.py
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costs/end_of_life_costs.py
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costs/peak_load.py
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costs/total_maintenance_costs.py
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costs/total_operational_costs.py
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costs/total_operational_incomes.py
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costs/version.py
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@ -1 +0,0 @@
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@ -1,4 +0,0 @@
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numpy_financial
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cerc_hub
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pandas
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setuptools
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@ -1 +0,0 @@
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costs
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@ -39,9 +39,9 @@ class CapitalCosts(CostBase):
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dtype='float'
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)
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self._yearly_capital_costs.loc[0, 'B2010_opaque_walls'] = 0
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self._yearly_capital_costs.loc[0]['B2020_transparent'] = 0
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self._yearly_capital_costs.loc[0, 'B2020_transparent'] = 0
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self._yearly_capital_costs.loc[0, 'B3010_opaque_roof'] = 0
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self._yearly_capital_costs.loc[0]['B10_superstructure'] = 0
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self._yearly_capital_costs.loc[0, 'B10_superstructure'] = 0
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self._yearly_capital_costs.loc[0, 'D3020_heat_generating_systems'] = 0
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self._yearly_capital_costs.loc[0, 'D3030_cooling_generation_systems'] = 0
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self._yearly_capital_costs.loc[0, 'D3040_distribution_systems'] = 0
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@ -107,9 +107,9 @@ class CapitalCosts(CostBase):
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capital_cost_roof = surface_roof * chapter.item('B3010_opaque_roof').refurbishment[0]
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capital_cost_ground = surface_ground * chapter.item('B10_superstructure').refurbishment[0]
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self._yearly_capital_costs.loc[0, 'B2010_opaque_walls'] = capital_cost_opaque * own_capital
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self._yearly_capital_costs.loc[0]['B2020_transparent'] = capital_cost_transparent * own_capital
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self._yearly_capital_costs.loc[0, 'B2020_transparent'] = capital_cost_transparent * own_capital
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self._yearly_capital_costs.loc[0, 'B3010_opaque_roof'] = capital_cost_roof * own_capital
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self._yearly_capital_costs.loc[0]['B10_superstructure'] = capital_cost_ground * own_capital
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self._yearly_capital_costs.loc[0, 'B10_superstructure'] = capital_cost_ground * own_capital
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if self._configuration.retrofit_scenario in (SYSTEM_RETROFIT_AND_PV, SKIN_RETROFIT_AND_SYSTEM_RETROFIT_AND_PV):
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chapter = self._capital_costs_chapter.chapter('D_services')
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@ -119,7 +119,7 @@ class CapitalCosts(CostBase):
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capital_cost_distribution_equipment = peak_cooling * chapter.item('D3040_distribution_systems').initial_investment[0]
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capital_cost_other_hvac_ahu = peak_cooling * chapter.item('D3080_other_hvac_ahu').initial_investment[0]
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capital_cost_lighting = self._total_floor_area * chapter.item('D5020_lighting_and_branch_wiring').initial_investment[0]
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self._yearly_capital_costs.loc[0]['D301010_photovoltaic_system'] = capital_cost_pv
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self._yearly_capital_costs.loc[0, 'D301010_photovoltaic_system'] = capital_cost_pv
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self._yearly_capital_costs.loc[0, 'D3020_heat_generating_systems'] = capital_cost_heating_equipment * own_capital
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self._yearly_capital_costs.loc[0, 'D3030_cooling_generation_systems'] = capital_cost_cooling_equipment * own_capital
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self._yearly_capital_costs.loc[0, 'D3040_distribution_systems'] = capital_cost_distribution_equipment * own_capital
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@ -219,7 +219,7 @@ class CapitalCosts(CostBase):
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if self._configuration.retrofit_scenario in (SYSTEM_RETROFIT_AND_PV, SKIN_RETROFIT_AND_SYSTEM_RETROFIT_AND_PV):
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if (year % chapter.item('D301010_photovoltaic_system').lifetime) == 0:
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self._yearly_capital_costs.loc[year]['D301010_photovoltaic_system'] += (
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self._yearly_capital_costs.loc[year, 'D301010_photovoltaic_system'] += (
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surface_pv * chapter.item('D301010_photovoltaic_system').reposition[0] * costs_increase
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)
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capital_cost_skin = capital_cost_opaque + capital_cost_ground + capital_cost_transparent + capital_cost_roof
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@ -54,7 +54,7 @@ class TotalOperationalCosts(CostBase):
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fixed_gas_cost_year_0 = archetype.operational_cost.fuels[1].fixed_monthly * 12 * factor_residential
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variable_gas_cost_year_0 = (
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(building.heating_consumption[cte.YEAR][0] + building.domestic_hot_water_consumption[cte.YEAR][0])
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/ 1000 * cte.WATTS_HOUR_TO_JULES * archetype.operational_cost.fuels[1].variable[0]
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/ (1000 * cte.WATTS_HOUR_TO_JULES) * archetype.operational_cost.fuels[1].variable[0]
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)
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if self._configuration.fuel_type == 0:
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electricity_heating = building.heating_consumption[cte.YEAR][0] / 1000
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@ -73,8 +73,9 @@ class TotalOperationalCosts(CostBase):
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peak_electricity_load = PeakLoad(building).electricity_peak_load
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peak_load_value = peak_electricity_load.max(axis=1)
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peak_electricity_demand = peak_load_value[1] / 1000 # self._peak_electricity_demand adapted to kW
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variable_electricity_cost_year_0 = \
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total_electricity_consumption * cte.WATTS_HOUR_TO_JULES * archetype.operational_cost.fuels[0].variable[0]
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variable_electricity_cost_year_0 = (
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total_electricity_consumption / cte.WATTS_HOUR_TO_JULES * archetype.operational_cost.fuels[0].variable[0]
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)
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peak_electricity_cost_year_0 = peak_electricity_demand * archetype.operational_cost.fuels[0].fixed_power * 12
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monthly_electricity_cost_year_0 = archetype.operational_cost.fuels[0].fixed_monthly * 12 * factor_residential
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@ -28,15 +28,16 @@ class TotalOperationalIncomes(CostBase):
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:return: pd.DataFrame
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"""
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building = self._building
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archetype = self._archetype
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if cte.YEAR not in building.onsite_electrical_production:
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onsite_electricity_production = 0
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else:
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onsite_electricity_production = building.onsite_electrical_production[cte.YEAR][0] / 1000
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onsite_electricity_production = building.onsite_electrical_production[cte.YEAR][0]
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for year in range(1, self._configuration.number_of_years + 1):
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price_increase_electricity = math.pow(1 + self._configuration.electricity_price_index, year)
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# todo: check the adequate assignation of price. Pilar
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price_export = 0.075 # archetype.income.electricity_export
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price_export = archetype.income.electricity_export * cte.WATTS_HOUR_TO_JULES * 1000 # to account for unit change
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self._yearly_operational_incomes.loc[year, 'Incomes electricity'] = (
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onsite_electricity_production * price_export * price_increase_electricity
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)
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@ -5,4 +5,4 @@ Copyright © 2023 Project Coder Guille Gutierrez guillermo.gutierrezmorote@conco
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Code contributor Pilar Monsalvete Alvarez de Uribarri pilar.monsalvete@concordia.ca
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Code contributor Oriol Gavalda Torrellas oriol.gavalda@concordia.ca
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"""
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__version__ = '0.1.0.4'
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__version__ = '0.1.0.6'
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@ -1,121 +0,0 @@
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}
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Block a user