Sizing and operating power-to-gas systems to absorb excess renewable electricity

被引:85
作者
Simonis, B. [1 ]
Newborough, M. [1 ]
机构
[1] ITM Power, Sheffield, S Yorkshire, England
关键词
Power-to-gas; Electrolysis; Energy storage; Sector coupling; Excess renewable energy; HYDROGEN; PLANTS; ENERGY; PILOT; CO2;
D O I
10.1016/j.ijhydene.2017.07.121
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Various configurations of power-to-gas system are investigated as a means for capturing excess wind power in the Emden region of Germany and transferring it to the natural gas grid or local biogas-CHP plant. Consideration is given to producing and injecting low concentration hydrogen admixtures, synthetic methane, or hydrogen/synthetic methane mixtures. Predictions based on time series data for wind generation and electricity demand indicate that excess renewable electricity levels will reach about 40 MW and 45 GW h per annum by 2020, and that it is desirable to achieve a progression in power-to-gas capacity in the preceding period. The findings are indicative for regions transitioning from medium to high renewable power penetrations. To capture an increasing proportion of the growing amount of excess renewable electricity, the following recommendations are made: implement a 4 MW hydrogen admixture plant and hydrogen buffer of 600 kg in 2018; then in 2020, implement a 17 MW hybrid system for injecting hydrogen and synthetic methane (with a hydrogen storage capacity of at least 400 kg) in conjunction with a bio-methane injection plant. The 17 MW plant will capture 68% of the available excess renewable electricity in 2020, by offering an availability to the electricity grid operator of >97% and contributing 19.1 GW h of 'green' gas to the gas grid. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:21635 / 21647
页数:13
相关论文
共 33 条
[11]  
FNR, 2013, LEITF BIOG GEW NUTZ
[12]   Hydrogen from renewable electricity: An international review of power-to-gas pilot plants for stationary applications [J].
Gahleitner, Gerda .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (05) :2039-2061
[13]   Renewable Power-to-Gas: A technological and economic review [J].
Goetz, Manuel ;
Lefebvre, Jonathan ;
Moers, Friedemann ;
Koch, Amy McDaniel ;
Graf, Frank ;
Bajohr, Siegfried ;
Reimert, Rainer ;
Kolb, Thomas .
RENEWABLE ENERGY, 2016, 85 :1371-1390
[14]  
Graf F., 2014, ABSCHLUSSBERICHT TEC
[15]   Optimal Use of Power-to-Gas Energy Storage Systems in an 85% Renewable Energy Scenario [J].
Jentsch, Mareike ;
Trost, Tobias ;
Sterner, Michael .
8TH INTERNATIONAL RENEWABLE ENERGY STORAGE CONFERENCE AND EXHIBITION (IRES 2013), 2014, 46 :254-261
[16]  
Krause J., 2009, SPEICHER STROMNETZE
[17]   Opportunities of Power-to-Gas technology [J].
Lewandowska-Bernat, Anna ;
Desideri, Umberto .
8TH INTERNATIONAL CONFERENCE ON APPLIED ENERGY (ICAE2016), 2017, 105
[18]   Power-to-gas and power-to-liquid for managing renewable electricity intermittency in the Alpine Region [J].
Mesfun, Sennai ;
Sanchez, Daniel L. ;
Leduc, Sylvain ;
Wetterlund, Elisabeth ;
Lundgren, Joakim ;
Biberacher, Markus ;
Kraxner, Florian .
RENEWABLE ENERGY, 2017, 107 :361-372
[19]   Power-to-gas through CO2 methanation: Assessment of the carbon balance regarding EU directives [J].
Meylan, Frederic David ;
Piguet, Frederic-Paul ;
Erkman, Suren .
JOURNAL OF ENERGY STORAGE, 2017, 11 :16-24
[20]  
Muller-Syring G, 2013, MANAGEMENT SUMMARY E