Advances in power-to-gas technologies: cost and conversion efficiency

被引:23
作者
Glenk, Gunther [1 ,2 ,5 ]
Holler, Philip [2 ]
Reichelstein, Stefan [2 ,3 ,4 ]
机构
[1] Harvard Univ, Harvard Business Sch, Cambridge, MA 02138 USA
[2] Univ Mannheim, Business Sch, Mannheim, Germany
[3] Stanford Univ, Grad Sch Business, Palo Alto, CA USA
[4] ZEW Leibniz Ctr European Econ Res, Mannheim, Germany
[5] MIT, Ctr Energy & Environm Policy Res, Cambridge, MA 02139 USA
关键词
ENERGY-STORAGE; HYDROGEN-PRODUCTION; WATER ELECTROLYSIS; RENEWABLE POWER; LEARNING-CURVES; WIND; IMPACT; SECTOR;
D O I
10.1039/d3ee01208e
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Widespread adoption of hydrogen as an energy carrier is commonly believed to require continued advances in power-to-gas (PtG) technologies. Here we provide a comprehensive assessment of the dynamics of system prices and conversion efficiency for three currently prevalent PtG technologies: alkaline, polymer electrolyte membrane, and solid oxide cell electrolysis. We analyze global data points for system prices, energy consumption, and the cumulative installed capacity for each technology. Our regression results establish that over the past two decades every doubling of cumulative installed capacity resulted in system prices coming down by 14-17%, while the energy required for electrolysis was reduced by 2%. On the basis of multiple forecasts of future deployment growth, as well as policy and industry targets, our calculations project that all three technologies will become substantially cheaper and more energy-efficient in the coming decade. Specifically, the life-cycle cost of electrolytic hydrogen production is projected to fall in the range of $1.6-1.9 per kg by 2030, thereby approaching but not reaching the $1.0 per kg cost target set by the U.S. Department of Energy. This paper examines the cost and efficiency dynamics of three prevalent Power-to-Gas technologies. Our results suggest that electrolytic hydrogen production costs will approach but not reach the U.S. Department of Energy's $1.0/kg target by 2030.
引用
收藏
页码:6058 / 6070
页数:13
相关论文
共 68 条
[1]  
Ainscough C., HYDROGEN PRODUCTION
[2]  
[Anonymous], 2022, 117 US C H R 5376 IN
[3]  
[Anonymous], 2021, press release
[4]  
[Anonymous], 2022, CERES SHELL SIGN AGR
[5]  
[Anonymous], 1936, Journal of Aeronautical Science, DOI [10.2514/8.155.https://arc.aiaa.org/doi/10.2514/8.155, 10.2514/8.155, DOI 10.2514/8.155]
[6]   Perspectives on Low-Temperature Electrolysis and Potential for Renewable Hydrogen at Scale [J].
Ayers, Katherine ;
Danilovic, Nemanja ;
Ouimet, Ryan ;
Carmo, Marcelo ;
Pivovar, Bryan ;
Bornstein, Marius .
ANNUAL REVIEW OF CHEMICAL AND BIOMOLECULAR ENGINEERING, VOL 10, 2019, 10 :219-239
[7]  
Baker DR, 2022, A green hydrogen economy depends on this little-known machine
[8]  
Bertuccioli L, Study on development of water electrolysis in the EU
[9]  
BloombergNEF, HYDR EC PROD REN
[10]   Electrofuels for the transport sector: A review of production costs [J].
Brynolf, Selma ;
Taljegard, Maria ;
Grahn, Maria ;
Hansson, Julia .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 81 :1887-1905