An Economically Viable 100% Renewable Energy System for All Energy Sectors of Germany in 2030

被引:17
作者
Traber, Thure [1 ]
Hegner, Franziska Simone [1 ,2 ]
Fell, Hans-Josef [1 ]
机构
[1] Energy Watch Grp, Albrechtstr22, D-10117 Berlin, Germany
[2] Tech Univ Munich, Dept Phys, James Franck Str 1, D-85748 Garching, Germany
关键词
100% RE; Paris Agreement; sector coupling; cost optimization; linear modelling; wind power; HVDC grid expansion; ELECTRICITY; SCALE; SCENARIOS; IMPACT; WIND; COST;
D O I
10.3390/en14175230
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
To be able to fulfil the Paris Climate Agreement and keep global warming with reasonable confidence at a maximum of 1.5 degrees C above pre-industrial levels, Germany must set an end to all greenhouse gas emissions by 2030. At the core of this task is the switch to 100% renewables across all sectors on the same time horizon. Conventional technologies fueled by fossil and nuclear energies are, according to the vast majority of current cost calculations, energetically inefficient, too expensive, and too slow in expansion to be able to deliver a substantial contribution to rapid climate protection. We present the first comprehensive energy scenario that shows the way to 100% renewable energy for all energy sectors by 2030. The result of the calculations is a cost-effective energy system that is compatible with the German share of necessary greenhouse gas reduction. This study shows a target system of generation, conversion, and storage technologies that can achieve the transformation to 100% renewable energy in all energy sectors-electricity, heat, and mobility-in time and at competitive costs below the costs of the current system. Moreover, we demonstrate the huge cost effect that arises if southern Germany renounces its onshore wind resources and find that this would substantially increase the need for high-voltage direct-current transmission capacity.
引用
收藏
页数:17
相关论文
共 38 条
[1]  
[Anonymous], 2014, Int. J. Sustain. Energy, DOI [DOI 10.5278/IJSEPM.2014.1.2, 10.5278/ijsepm.2014.1.2]
[2]   Energy self -supply estimation in intermediate cities [J].
Barragan-Escandon, Edgar A. ;
Zalamea-Leon, Esteban F. ;
Terrados-Cepeda, Julio ;
Vanegas-Peralta, P. F. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2020, 129
[3]   Electrification of transport and residential heating sectors in support of renewable penetration: Scenarios for the Italian energy system [J].
Bellocchi, Sara ;
Manno, Michele ;
Noussan, Michel ;
Prina, Matteo Giacomo ;
Vellini, Michela .
ENERGY, 2020, 196
[4]   Low-cost renewable electricity as the key driver of the global energy transition towards sustainability [J].
Bogdanov, Dmitrii ;
Ram, Manish ;
Aghahosseini, Arman ;
Gulagi, Ashish ;
Oyewo, Ayobami Solomon ;
Child, Michael ;
Caldera, Upeksha ;
Sadovskaia, Kristina ;
Farfan, Javier ;
Noel Simas Barbosa, Larissa De Souza ;
Fasihi, Mahdi ;
Khalili, Siavash ;
Traber, Thure ;
Breyer, Christian .
ENERGY, 2021, 227
[5]   Full energy sector transition towards 100% renewable energy supply: Integrating power, heat, transport and industry sectors including desalination [J].
Bogdanov, Dmitrii ;
Gulagi, Ashish ;
Fasihi, Mahdi ;
Breyer, Christian .
APPLIED ENERGY, 2021, 283
[6]   Synergies of sector coupling and transmission reinforcement in a cost-optimised, highly renewable European energy system [J].
Brown, T. ;
Schlachtberger, D. ;
Kies, A. ;
Schramm, S. ;
Greiner, M. .
ENERGY, 2018, 160 :720-739
[7]  
Bundesministerium fur Wirtschaft und Energie BMWI, 2021, GES EN DAT BMWI
[8]   Scenarios for sustainable energy in Scotland [J].
Child, Michael ;
Ilonen, Roope ;
Vavilov, Mihail ;
Kolehmainen, Mikko ;
Breyer, Christian .
WIND ENERGY, 2019, 22 (05) :666-684
[9]   Sustainability guardrails for energy scenarios of the global energy transition [J].
Child, Michael ;
Koskinen, Otto ;
Linnanen, Lassi ;
Breyer, Christian .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 91 :321-334
[10]   Vision and initial feasibility analysis of a recarbonised Finnish energy system for 2050 [J].
Child, Michael ;
Breyer, Christian .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2016, 66 :517-536