[1] GLATZMAER G. Summary report for concentrating solar power thermal storage workshop[R]. Technical Report, No. NREL/TP-5500-52134, USA, 2011.
[2] HERRMANN U, KELLY B, HENRY P. Two-tank molten salt storage for parabolic trough solar power plants[J]. Energy. 2004, 29(6):883-893.
[3] PRICE H. Advances in parabolic trough solar power technology[J]. Solar Energy Engineering. 2002, 124(2):109-125.
[4] BROWN D, LAMARCHE J, SPANNER G. Chemical energy storage system for SEGS solar power plant[R]. Pacific Northwest Laboratory. 1991, Report PNL-7709:249-256.
[5] KENISARIN M M. High-temperature phase change materials for thermal energy storage[J]. Renewable and Sustainable Energy Reviews, 2010, 14:955-970.
[6] PROTSENK O P I B. Ternary system of fused nitrates of calcium, and sodium[J]. Zhuenal Obshehei Khimii, 1950, 20:1365-1375.
[7] 翟伟. 太阳能热发电用熔盐优化及熔盐中材料的腐蚀行为研究[D]. 南昌:南昌航空大学, 2015. ZHAI Wei. Optimization of molten salt for solar thermal power generation and corrosion behavior of materials in molten salt[D]. Nanchang:Nanchang Hangkong University, 2015.
[8] 李树民, 孙泽, 黄龙, 等. 太阳能热电站储能硝酸熔盐研究进展[J]. 山东化工, 2016, 45(16):42-43. LI Shumin, SUN Ze, HUANG Long, et al. The research developments of nitrate molten salt for energy storage in concentrating solar power plant[J]. Shandong Chemical Industry, 2016, 45(16):42-43.
[9] FERNÁNDEZ A G, GALLEGUILLOS H, FUENTEALBA E, et al. Thermal characterization of HITEC molten salt for energy storage in solar linear concentrated technology[J]. Journal of Thermal Analysis and Calorimetry, 2015, 122(1):3-9.
[10] JIN Y, CHENG J, AN X, et al. Accurate viscosity measurement of nitrates/nitrites salts for concentrated solar power[J]. Solar Energy, 2016, 137:385-392.
[11] GIMENEZ P, FERERES S. Effect of heating rates and composition on the thermal decomposition of nitrate based molten salts[J]. Energy Procedia, 2015, 69:654-662.
[12] REN N, WU Y T, WANG T, et al. Experimental study on optimized composition of mixed carbonate for phase change thermal storage in solar thermal power plant[J]. Journal of Thermal Analysis and Calorimetry, 2011, 104(3):1201-1208.
[13] REN Nan, WU Yuting, MA Chongfang, et al. Preparation and thermal properties of quaternary mixed nitrate with low melting point[J]. Solar Energy Materials & Solar Cells, 2014, 127:6-13.
[14] WU Yuting, LI Ying, REN Nan, et al. Improving the thermal properties of NaNO3-KNO3 for concentrating solar power by adding additives[J]. Solar Energy Materials & Solar Cells, 2017, 160:263-268.
[15] WU Yuting, LI Ying, LU Yuanwei, et al. Novel low melting point binary nitrates for thermal energy storage applications[J]. Solar Energy Materials & Solar Cells, 2017, 164:114-121.
[16] ZOU L, CHEN X, WU Y, et al. Experimental study of thermophysical properties and thermal stability of quaternary nitrate molten salts for thermal energy storage[J]. Solar Energy Materials and Solar Cells, 2019, 190:12-19.
[17] CHEN X, WU Y, WANG X, et al. Experimental study on thermophysical properties of molten salt nanofluids prepared by high-temperature melting[J]. Solar Energy Materials and Solar Cells, 2019, 191:209-217.
[18] LI Y, CHEN X, WU Y, et al. Experimental study on the effect of SiO2 nanoparticle dispersion on the thermophysical properties of binary nitrate molten salt[J]. Solar Energy, 2019, 139:776-781.
[19] 左远志, 丁静, 杨晓西. 蓄热技术在聚焦式太阳能热发电系统中的应用现状[J]. 化工进展, 2006, 25(9):995-1001. ZUO Yuanzhi, DING Jing, YANG Xiaoxi. Current status of thermal energy storage technologies used for concentrating solar power systems[J]. Chemical Industry and Engineering Progress, 2006, 25(9):995-1001.
[20] 李石栋, 张仁元, 李风, 等. 储热材料在聚光太阳能热发电中的研究进展[J]. 材料导报, 2010, 24(21):51-55. LI Shidong, ZHANG Renyuan, LI Feng, et al. Research progress in thermal storage materials applied in concentrating solar power[J]. Materials Review, 2010, 24(21):51-55.
[21] NI H, WU J, SUN Z, et al. Insight into the viscosity enhancement ability of Ca(NO3)2 on the binary molten nitrate salt:A molecular dynamics simulation study[J]. Chemical Engineering Journal, 2018, doi:10.1016/j.cej.2018.09.190.
[22] JIN Y, CHENG J H, WANG K, et al. Research on thermo-physical properties of several typical molten salt coolants[J]. Nucl. Tech., 2016, 39:050604.
[23] BONK A, SAU S, URANGA N, et al. Advanced heat transfer fluids for direct molten salt line-focusing CSP plants[J]. Progress in Energy and Combustion Science, 2018, 67:69-87.
[24] BOEREMA N, MORRISON G, TAYLOR R, et al. Liquid sodium versus Hitec as a heat transfer fluid in solar thermal central receiver systems[J]. Solar Energy, 2012, 86(9):2293-2305.
[25] BAUER T, PFLEGER N, BREIDENBACH N, et al. Material aspects of solar salt for sensible heat storage[J]. Applied Energy, 2013, 111:1114-1119.
[26] ZAVOICO A B. Solar power tower design basis document, Revision 0[R]. Sandia National Labs., Albuquerque, NM (US); Sandia National Labs., Livermore, CA (US), 2001. |