热能储存
材料科学
集中太阳能
复合数
熔盐
热导率
碳纳米管
储能
太阳能
太阳能
热能
化学工程
复合材料
冶金
热力学
功率(物理)
生态学
物理
生物
工程类
作者
Michael Schüller,Frank E. Little,Darren R. Malik,M. Betts,Qian Shao,Jun Luo,Zhong Wan,Sandhya Shankar,Ashwin Padmanaban
摘要
We demonstrated that adding nanoparticles to a molten salt would increase its utility as a thermal energy storage medium for a concentrating solar power system. Specifically, we demonstrated that we could increase the specific heat of nitrate and carbonate salts containing 1% or less of alumina nanoparticles. We fabricated the composite materials using both evaporative and air drying methods. We tested several thermophysical properties of the composite materials, including the specific heat, thermal conductivity, latent heat, and melting point. We also assessed the stability of the composite material with repeated thermal cycling and the effects of adding the nanoparticles on the corrosion of stainless steel by the composite salt. Our results indicate that stable, repeatable 25-50% improvements in specific heat are possible for these materials. We found that using these composite salts as the thermal energy storage material for a concentrating solar thermal power system can reduce the levelized cost of electricity by 10-20%. We conclude that these materials are worth further development and inclusion in future concentrating solar power systems.
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