Energy Storage Science and Technology ›› 2021, Vol. 10 ›› Issue (1): 370-378.doi: 10.19799/j.cnki.2095-4239.2020.0256
• Energy Storage System and Engineering • Previous Articles Next Articles
Fa WAN1(), Zhongming JIANG1,2(), Dong TANG1,3
Received:
2020-08-05
Revised:
2020-09-15
Online:
2021-01-05
Published:
2021-01-08
Contact:
Zhongming JIANG
E-mail:wfwanfa123@163.com;zzmmjiang@163.com
CLC Number:
Fa WAN, Zhongming JIANG, Dong TANG. The influence of CAES reservoir design parameters on thermodynamic properties[J]. Energy Storage Science and Technology, 2021, 10(1): 370-378.
1 | 潘聪, 王春明, 刘松, 等. 分布式电网中混合储能系统的接入型式探讨[J]. 船电技术, 2014, 34(6): 46-49. |
PAN C, WANG C M, LIU S, et al. Reviews on the structure of hybrid energy storage system ligated into distributed grid[J]. Marine Electric & Electronic Engineering, 2014, 34(6): 46-49. | |
2 | 杨江涛, 孙春顺, 杨安, 等. 峰谷电价下配电网中分布式储能的容量配置[J]. 电力科学与工程, 2016, 32(11): 12-17. |
YANG J T, SUN C S, YANG A, et al. Capacity configuration of distribution energy storage in distribution network under the peak-valley[J]. Electric Power Science and Engineering, 2016, (11): 12-17. | |
3 | 余耀, 孙华, 许俊斌, 等. 压缩空气储能技术综述[J]. 装备机械, 2013(1): 68-74. |
YU Y, SUN H, XU J B, et al. Overview of compressed air energy storage technology[J]. Equipment Machinery, 2013(1): 68-74. | |
4 | XING L, WANG J, DOONER M, et al. Overview of current development in electrical energy storage technologies and the application potential in power system operation[J]. Applied Energy, 2015, 137: 511-536. |
5 | CHEN L J, ZHENG T W, MEI S W, et al. Review and prospect of compressed air energy storage system[J]. J Mod Power Syst Clean Energy, 2016, 4(4): 529-541. |
6 | 高建强, 庄绪增, 敬赛. CAES电站储气室热力学特性的数值模拟研究[J]. 电力科学与工程, 2018, 34(12): 71-76. |
GAO J Q, ZHUANG X Z, JIN S. Numerical simulation study on thermodynamic characteristics of gas storage chamber of CAES power station[J]. Electric Power Science and Engineering, 2018, 34(12): 71-76. | |
7 | RAJU M, KHAITAN S K. Modeling and simulation of compressed air storage in caverns: A case study of the Huntorf plant[J]. Applied Energy, 2012, 89(1): 474-481. |
8 | KUSHNIRN, DAYANA, ULLMANNA. Temperature and pressure variations within compressed air energy storage caverns[J]. International Journal of Heat & Mass Transfer, 2012, 55(21/22): 5616-5630. |
9 | ZHOU S W, XIA C C, DU S G, et al. An analytical solution for mechanical responses induced by temperature and air pressure in a lined rock cavern for underground compressed air energy storage[J]. Rock Mechanics & Rock Engineering, 2015, 48(2): 749-770. |
10 | XIA C, ZHOU Y, ZHOU S, et al. A simplified and unified analytical solution for temperature and pressure variations in compressed air energy storage caverns[J]. Renewable Energy, 2015, 74: 718-726. |
11 | QUAST P, CROTOGINO F. Initial experience with the compressed-air energy storage (CAES) project of Nordwest deutsche Kraftwerke AG (NWK) at Huntorf/West Germany[J]. Erdoel Erdgas Zeitschrift, 1979, 95: 310-314. |
12 | GEISSBÜHLER L, BECATTINI V, ZANGANEH G , et al. Pilot-scale demonstration of advanced adiabatic compressed air energy storage, Part 1: Plant description and tests with sensible thermal-energy storage[J]. Journal of Energy Storage, 2018, 17: 129-139. |
13 | 蒋中明, 刘澧源, 李双龙, 等. 压气储能平江试验库受力特性数值研究[J]. 长沙理工大学学报(自然科学版), 2017, 14(4): 62-68. |
JIANG Z M, LIU L Y, LI S L, et al. Numerical study on mechanical characteristics of the Pingjiang pilot cavern for compressed air energy storage[J]. Journal of Changsha University of Science and Technology (Natural Science), 2017, 14(4): 62-68. | |
14 | 刘佳. 超临界空气蓄热蓄冷数值与实验研究[D]. 北京: 中国科学院大学(中国科学院工程热物理研究所), 2012. |
LIU J. Numerical and experimental study heat and cold energy storage using supercritical air[D]. Beijing: Chinese Academy of Science(Institute of Engineering Thermophysics, Chinese Academy of Sciences), 2012. | |
15 | HE W , LUO X , EVANS D , et al. Exergy storage of compressed air in cavern and cavern volume estimation of the large-scale compressed air energy storage system[J]. Applied Energy, 2017, 208: 745-757. |
16 | 夏才初, 张平阳, 周舒威, 等. 大规模压气储能洞室稳定性和洞周应变分析[J]. 岩土力学, 2014, 35(5): 1391-1398. |
XIA C C, ZHANG P Y, ZHOU S W, et al. Stability and tangential strain analysis of large-scale compressed air energy storage cavern[J]. Rock and Soil Mechanics, 2014, 35(5): 1391-1398. |
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