pypsa-eur/doc/configtables/industry.csv
2023-06-27 23:16:15 +02:00

3.6 KiB
Raw Blame History

1UnitValuesDescription
2St_primary_fraction--Dictionary with planning horizons as keys.The fraction of steel produced via primary route versus secondary route (scrap+EAF). Current fraction is 0.6
3DRI_fraction--Dictionary with planning horizons as keys.The fraction of the primary route converted to DRI + EAF
4H2_DRI--floatThe hydrogen consumption in Direct Reduced Iron (DRI) Mwh_H2 LHV/ton_Steel from 51kgH2/tSt in Vogl et al (2018) doi:10.1016/j.jclepro.2018.08.279
5elec_DRI--floatThe electricity consumed in Direct Reduced Iron (DRI) shaft. MWh/tSt HYBRIT brochure https://ssabwebsitecdn.azureedge.net/-/media/hybrit/files/hybrit_brochure.pdf
6Al_primary_fraction--Dictionary with planning horizons as keys.The fraction of aluminium produced via the primary route versus scrap. Current fraction is 0.4
7MWh_NH3_per_tNH3LHVfloatThe energy amount per ton of ammonia.
8MWh_CH4_per_tNH3_SMR--floatThe energy amount of methane needed to produce a ton of ammonia using steam methane reforming (SMR). Value derived from 2012's demand from https://ec.europa.eu/docsroom/documents/4165/attachments/1/translations/en/renditions/pdf
9MWh_elec_per_tNH3_SMR--floatThe energy amount of electricity needed to produce a ton of ammonia using steam methane reforming (SMR). same source, assuming 94-6% split methane-elec of total energy demand 11.5 MWh/tNH3
10MWh_H2_per_tNH3_electrolysis--floatThe energy amount of hydrogen needed to produce a ton of ammonia using HaberBosch process. From https://doi.org/10.1016/j.joule.2018.04.017, around 0.197 tH2/tHN3 (>3/17 since some H2 lost and used for energy)
11MWh_elec_per_tNH3_electrolysis--floatThe energy amount of electricity needed to produce a ton of ammonia using HaberBosch process. From https://doi.org/10.1016/j.joule.2018.04.017 Table 13 (air separation and HB)
12MWh_NH3_per_MWh_H2_cracker--floatThe energy amount of amonia needed to produce an energy amount hydrogen using ammonia cracker. https://github.com/euronion/trace/blob/44a5ff8401762edbef80eff9cfe5a47c8d3c8be4/data/efficiencies.csv
13NH3_process_emissionsMtCO2/afloatThe emission of ammonia production from steam methane reforming (SMR)
14petrochemical_process_emissionsMtCO2/afloatThe emission of petrochemical production
15HVC_primary_fraction--floatThe fraction of today's high value chemicals (HVC) produced via primary route
16HVC_mechanical_recycling_fraction--floatThe fraction of today's high value chemicals (HVC) produced using mechanical recycling
17HVC_chemical_recycling_fraction--floatThe fraction of today's high value chemicals (HVC) produced using chemical recycling
18HVC_production_todayMtHVC/afloatThe amount of high value chemicals (HVC) produced
19MWh_elec_per_tHVC_mechanical_recycling--floatThe energy amount of electricity needed to produce a ton of high value chemical (HVC) using mechanical recycling
20MWh_elec_per_tHVC_chemical_recycling--floatThe energy amount of electricity needed to produce a ton of high value chemical (HVC) using chemical recycling
21chlorine_production_todayMtCl/afloatThe amount of chlorine produced
22MWh_elec_per_tCl--floatThe energy amount of electricity needed to produce a ton of chlorine
23MWh_H2_per_tCl--floatThe energy amount of hydrogen needed to produce a ton of chlorine
24methanol_production_todayMtMeOH/afloatThe amount of methanol produced
25MWh_elec_per_tMeOH--floatThe energy amount of electricity needed to produce a ton of methanol
26MWh_CH4_per_tMeOH--floatThe energy amount of methane needed to produce a ton of methanol
27hotmaps_locate_missing--true or falseLocate industrial sites without valid locations based on city and countries.
28reference_year--year