Review of the solubility, monitoring, and purification of impurities in molten salts for energy storage in concentrated solar power plants

被引:37
作者
Ong, Teng-Cheong [1 ]
Sarvghad, Madjid [1 ]
Lippiatt, Kaleb [1 ]
Griggs, Lewis [1 ]
Ryan, Hollie [1 ]
Will, Geoffrey [1 ]
Steinberg, Theodore A. [1 ]
机构
[1] Queensland Univ Technol, 2 George St, Brisbane, Qld 4000, Australia
关键词
Thermal energy storage; Molten salt; Impurity; Monitoring; Purification; HIGH-TEMPERATURE; CORROSION BEHAVIOR; CATHODIC PROTECTION; ABSORPTION-SPECTRA; STAINLESS-STEELS; PHASE-CHANGE; ALLOYS; CHLORIDE; FLUORIDE; ELECTRODE;
D O I
10.1016/j.rser.2020.110006
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Thermal Energy Storage (TES) for Concentrated Solar Power (CSP) applications is a vital part of bringing green technologies to cost parity with traditional fuel-based power. Eutectic salt mixtures are highly suitable for use in TES. However, they contain impurities that can detrimentally impact their performance and corrosion characteristics when stored in a metallic container. This review will present a summary of findings that delve into the characterization, quantification, and, most importantly, the mitigation and control of these contaminants. Some of the common impurities discovered in commercially available salts include O-2, H+ and OH-, all of which highly accelerate corrosion. Other contaminants include chloride, fluoride, perchlorate, sulfate, carbonate and nitrite/nitrate compounds. Purification, monitoring, and control of impurities are presented; including heat processing, gas sparging, additives, acid consumption analysis, voltammetry methods, and physical filtration. Finally, recommendations are made for the most appropriate strategies for mitigating impurities for CSP applications.
引用
收藏
页数:17
相关论文
共 110 条
[51]  
Kuznetsov SA, 2002, NATO SCI SER II-MATH, V52, P283
[52]   Corrosion resistance of 310S and 316L austenitic stainless steel in a quaternary molten salt for concentrating solar power [J].
Li, Xiao Long ;
Wei, Xiaolan ;
Lu, Jianfeng ;
Ding, Jing ;
Wang, Weilong .
PROCEEDINGS OF THE 9TH INTERNATIONAL CONFERENCE ON APPLIED ENERGY, 2017, 142 :3590-3596
[53]  
Lindauer RB, 1969, ORNLTM2478
[54]   Investigation on molecular structure of molten Li2BeF4 (FLiBe) salt by infrared absorption spectra and density functional theory (DFT) [J].
Liu, Shuting ;
Su, Tao ;
Cheng, Jinhui ;
An, Xuehui ;
Zhang, Peng ;
Liu, Hongtao ;
Yao, Side ;
Xie, Leidong ;
Hou, Huiqi .
JOURNAL OF MOLECULAR LIQUIDS, 2017, 242 :1052-1057
[55]  
Maksoud L, 2015, 10 INT C MOLT SALT C, V10, P12
[56]  
Maricle DL., 1959, A new method for preparing hydroxide-free alkali chloride melts
[57]  
Martin-Marietta Denver Aerospace, 1984, SAND8181923 SAND NAT
[58]   Corrosion of commercial alloys in FLiNaK molten salt containing EuF3 and simulant fission product additives [J].
McAlpine, Samuel W. ;
Skowronski, Natasha C. ;
Zhou, Weiyue ;
Zheng, Guiqiu ;
Short, Michael P. .
JOURNAL OF NUCLEAR MATERIALS, 2020, 532 (532)
[59]  
McMonigle MJ, 1984, MAGNETIC REMOVAL IMP
[60]   Modeling the Effect of Cathodic Protection on Superalloys Inside High Temperature Molten Salt Systems [J].
Mehrabadi, Bahareh Alsadat Tavakoli ;
Weidner, John W. ;
Garcia-Diaz, Brenda ;
Martinez-Rodriguez, Michael ;
Olson, Luke ;
Shimpalee, Sirivatch .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2017, 164 (04) :C171-C179