Technical challenges and future direction for high-efficiency metal hydride thermal energy storage systems

被引:41
|
作者
Ward, Patrick A. [1 ]
Corgnale, Claudio [1 ]
Teprovich, Joseph A., Jr. [1 ]
Motyka, Theodore [1 ]
Hardy, Bruce [1 ]
Sheppard, Drew [2 ]
Buckley, Craig [2 ]
Zidan, Ragaiy [1 ]
机构
[1] Savannah River Natl Lab, Clean Energy Directorate, Aiken, SC 29803 USA
[2] Curtin Univ, Dept Phys Astron & Med Radiat Sci, Fuels & Energy Technol Inst, Hydrogen Storage Res Grp, GPO Box U1987, Perth, WA 6845, Australia
来源
APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING | 2016年 / 122卷 / 04期
关键词
HEAT-TRANSFER FLUIDS; HYDROGEN PERMEATION; TRITIUM PERMEATION; STAINLESS-STEEL; SOLAR; RESISTANCE; REDUCTION; COATINGS; PHASE; PLANT;
D O I
10.1007/s00339-016-9909-x
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Recently, there has been increasing interest in thermal energy storage (TES) systems for concentrated solar power (CSP) plants, which allow for continuous operation when sunlight is unavailable. Thermochemical energy storage materials have the advantage of much higher energy densities than latent or sensible heat materials. Furthermore, thermochemical energy storage systems based on metal hydrides have been gaining great interest for having the advantage of higher energy densities, better reversibility, and high enthalpies. However, in order to achieve higher efficiencies desired of a thermal storage system by the US Department of Energy, the system is required to operate at temperatures >600 degrees C. Operation at temperatures >600 degrees C presents challenges including material selection, hydrogen embrittlement and permeation of containment vessels, appropriate selection of heat transfer fluids, and cost. Herein, the technical difficulties and proposed solutions associated with the use of metal hydrides as TES materials in CSP applications are discussed and evaluated.
引用
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页数:10
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