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# -*- coding: utf-8 -*-
# SPDX-FileCopyrightText: : 2020-2024 The PyPSA-Eur Authors
#
# SPDX-License-Identifier: MIT
"""
Build industrial energy demand per model region.
import pandas as pd
from _helpers import set_scenario_config
if __name__ == "__main__":
if "snakemake" not in globals():
from _helpers import mock_snakemake
snakemake = mock_snakemake(
"build_industrial_energy_demand_per_node",
weather_year="",
simpl="",
clusters=48,
planning_horizons=2030,
)
set_scenario_config(snakemake)
# import ratios
fn = snakemake.input.industry_sector_ratios
sector_ratios = pd.read_csv(fn, header=[0, 1], index_col=0)
# material demand per node and industry (Mton/a)
fn = snakemake.input.industrial_production_per_node
nodal_production = pd.read_csv(fn, index_col=0) / 1e3
# energy demand today to get current electricity
fn = snakemake.input.industrial_energy_demand_per_node_today
nodal_today = pd.read_csv(fn, index_col=0)
nodal_sector_ratios = pd.concat(
{node: sector_ratios[node[:2]] for node in nodal_production.index}, axis=1
nodal_production_stacked = nodal_production.stack()
nodal_production_stacked.index.names = [None, None]
# final energy consumption per node and industry (TWh/a)
nodal_df = (
(nodal_sector_ratios.multiply(nodal_production_stacked))
.T.groupby(level=0)
.sum()
rename_sectors = {
"elec": "electricity",
"biomass": "solid biomass",
"heat": "low-temperature heat",
}
nodal_df.rename(columns=rename_sectors, inplace=True)
nodal_df["current electricity"] = nodal_today["electricity"]
nodal_df.index.name = "TWh/a (MtCO2/a)"
fn = snakemake.output.industrial_energy_demand_per_node
nodal_df.to_csv(fn, float_format="%.2f")
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