Rock bed storage for solar thermal power plants: Rock characteristics, suitability, and availability

被引:90
作者
Allen, K. G. [1 ]
von Backstrom, T. W. [1 ]
Kroger, D. G. [1 ]
Kisters, A. F. M. [2 ]
机构
[1] Univ Stellenbosch, Dept Mech & Mechatron Engn, ZA-7602 Matieland, South Africa
[2] Univ Stellenbosch, Dept Earth Sci, ZA-7602 Matieland, South Africa
关键词
Rock bed; Thermal storage; Thermal cycling; Rock availability; Rock properties; IGNEOUS ROCKS; EXPANSION BEHAVIOR; PACKED-BEDS; TEMPERATURE; PRESSURE; GRANITES; FATIGUE; CONDUCTIVITY; DEPENDENCE; STRESS;
D O I
10.1016/j.solmat.2014.03.030
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
080707 [能源环境工程]; 082001 [油气井工程];
摘要
It is proposed that air-rock packed beds are suitable for thermal storage in solar power plants at temperatures of approximately 500-600 degrees C. However, little has been published in the field of thermal energy storage on the suitability of rock for this particular application. Desirable characteristics of rock for this application are presented, and the different rock types are discussed in the light of these requirements. A survey of the literature in other fields on rock characteristics shows which rock is most likely to be suitable. Results from thermal cycling tests (more than 900 cycles at rates of 2 degrees C/min) on a variety of rock samples are reported. Dolerite withstood this process well; some gneisses did but others did not. Geological maps showing the availability of potentially suitable rock in solar-rich regions of South Africa are presented. There are potentially suitable rock types (for example dolerite, granite, gneiss) in parts of the country which are deemed to have a good solar resource. Dolerite, which is found in copious quantities in insolation-rich regions, should be well-suited to packed bed thermal storage. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:170 / 183
页数:14
相关论文
共 54 条
[1]
Packed bed pressure drop dependence on particle shape, size distribution, packing arrangement and roughness [J].
Allen, K. G. ;
von Backstroem, T. W. ;
Kroeger, D. G. .
POWDER TECHNOLOGY, 2013, 246 :590-600
[2]
Allen K.G., 2014, SOLARPACES 2013 LAS
[3]
[Anonymous], THESIS U STELLENBOSC
[4]
[Anonymous], 1997, INT J ROCK MECH MIN
[5]
Thermal and rheological properties of granodioritic rocks from the Central Andes, North Chile [J].
Arndt, J ;
Bartel, T ;
Scheuber, E ;
Schilling, F .
TECTONOPHYSICS, 1997, 271 (1-2) :75-88
[6]
Birch F, 1940, AM J SCI, V238, P529
[7]
Influence of thermal damage on physical properties of a granite rock: Porosity, permeability and ultrasonic wave evolutions [J].
Chaki, S. ;
Takarli, M. ;
Agbodjan, W. P. .
CONSTRUCTION AND BUILDING MATERIALS, 2008, 22 (07) :1456-1461
[8]
Heat transfer model for regenerative beds [J].
Chou, MS ;
Cheng, WH ;
Huang, BJ .
JOURNAL OF ENVIRONMENTAL ENGINEERING-ASCE, 2000, 126 (10) :912-918
[9]
Curto P. A, 1980, ALTERN ENERGY, V1, P195
[10]
Dincer I, 1997, INT J ENERG RES, V21, P1157, DOI 10.1002/(SICI)1099-114X(19971010)21:12<1157::AID-ER317>3.0.CO