Dynamic Prospective Average and Marginal GHG Emission Factors-Scenario-Based Method for the German Power System until 2050

被引:16
作者
Seckinger, Nils [1 ]
Radgen, Peter [1 ]
机构
[1] Univ Stuttgart, Inst Energy Econ & Rational Energy Use IER, D-70565 Stuttgart, Germany
关键词
hourly emission factors; marginal emission factor; average emission factor; lifetime emissions; life cycle assessment; electrification; sector coupling; GREENHOUSE-GAS EMISSIONS; LIFE-CYCLE ASSESSMENT; ELECTRICITY-GENERATION; CO2; EMISSIONS; VEHICLES; IMPACT; CONSUMPTION; SECTOR; COSTS; LCA;
D O I
10.3390/en14092527
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Due to the continuous diurnal, seasonal, and annual changes in the German power supply, prospective dynamic emission factors are needed to determine greenhouse gas (GHG) emissions from hybrid and flexible electrification measures. For the calculation of average emission factors (AEF) and marginal emission factors (MEF), detailed electricity market data are required to represent electricity trading, energy storage, and the partial load behavior of the power plant park on a unit-by-unit, hourly basis. Using two normative scenarios up to 2050, different emission factors of electricity supply with regard to the degree of decarbonization of power production were developed in a linear optimization model through different GHG emission caps (Business-As-Usual, BAU: -74%; Climate-Action-Plan, CAP: -95%). The mean hourly German AEF drops to 182 g(CO2eq)/kWh(el) (2018: 468 g(CO2eq)/kWh(el)) in the BAU scenario by the year 2050 and even to 29 g(CO2eq)/kWh(el) in the CAP scenario with 3700 almost emission-free hours from power supply per year. The overall higher MEF decreases to 475 and 368 g(CO2eq)/kWh(el), with a stricter emissions cap initially leading to a higher MEF through more gas-fired power plants providing base load. If the emission intensity of the imported electricity differs substantially and a storage factor is implemented, the AEF is significantly affected. Hence, it is not sufficient to use the share of RES in net electricity generation as an indicator of emission intensity. With these emission factors it is possible to calculate lifetime GHG emissions and determine operating times of sector coupling technologies to mitigate GHG emissions in a future flexible energy system. This is because it is decisive when lower-emission electricity can be used to replace fossil energy sources.
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页数:22
相关论文
共 69 条
[1]   From Cradle to Junkyard: Assessing the Life Cycle Greenhouse Gas Benefits of Electric Vehicles [J].
Archsmith, James ;
Kendall, Alissa ;
Rapson, David .
RESEARCH IN TRANSPORTATION ECONOMICS, 2015, 52 :72-90
[2]   Plug-in hybrid vehicle GHG impacts in California: Integrating consumer-informed recharge profiles with an electricity-dispatch model [J].
Axsen, Jonn ;
Kurani, Kenneth S. ;
McCarthy, Ryan ;
Yang, Christopher .
ENERGY POLICY, 2011, 39 (03) :1617-1629
[3]  
BCG & Prognos, 2018, KLIM DEUTSCHL
[4]   Interactions between electricity-saving measures and carbon emissions from power generation in England and Wales [J].
Bettle, R. ;
Pout, C. H. ;
Hitchin, E. R. .
ENERGY POLICY, 2006, 34 (18) :3434-3446
[5]   Hourly CO2 Emission Factors and Marginal Costs of Energy Carriers in Future Multi-Energy Systems [J].
Boeing, Felix ;
Regett, Anika .
ENERGIES, 2019, 12 (12)
[6]   Comparing empirical and model-based approaches for calculating dynamic grid emission factors: An application to CO2-minimizing storage dispatch in Germany [J].
Braeuer, Fritz ;
Finck, Rafael ;
McKenna, Russell .
JOURNAL OF CLEANER PRODUCTION, 2020, 266
[7]  
Bundesministerium fur Umwelt Naturschutz Bau und Reaktorsicherheit (BMUB), 2016, KLIM 2050 KILM GRUND
[8]  
Bundesministerium fur Wirtschaft und Energie, 2019, ZEITR ENTW ERN EN DE
[9]  
Bundesministerium fur Wirtschaft und Energie (BMWi), 2019, AB SCHLUSSBERICHT
[10]  
Bundesnetzagentur fur Elektrizitat Gas Telekommunikation Post und Eisenbahnen, 2020, MON 2020