纳米流体
材料科学
热导率
热能储存
太阳能集热器中的纳米流体
相变材料
复合材料
化学工程
界面热阻
石墨烯
传热
热阻
热的
纳米技术
热力学
光电-热混合太阳能集热器
纳米颗粒
物理
工程类
作者
Yan Chen,Junfei Liang,Xiaobin Zhong,Chao Li,Daokun Chen,Zewei Wang,Shuxian Li,Junfeng Xu,Han Wang,Yufeng Li,Yangang Zhang,Hantao Liu
标识
DOI:10.1016/j.solmat.2022.111875
摘要
Solar salt is the most commonly used medium for thermal storage and transfer in concentrated solar power (CSP) plants, and the utilization efficiency of solar energy is depended on the thermal properties of solar salt. In this work, atomic-layer-thick hexagonal boron nitride nanosheet (BNNSs, so called white graphene) were obtained and dispersed into solar salt uniformly to produce composites nanofluids. Attributed to the ultra-high thermal conductivity and a large specific surface area of BNNSs, which reduce the thermal resistance, and facilitate forming of more semi-solid boundary layer and nucleation sites, the as-prepared composites nanofluids show superior thermal properties. The properties enhancement mechanism and effects of the mass fraction of BNNSs on the thermal properties of nanofluids was investigated carefully. Compared with the pure solar salt, the solid-phase thermal conductivity, solid-phase and liquid-phase specific heat capacity was elevated by 76.79%, 29.8% and 12.82%, respectively. At the same time, the supercooling degree was significantly decreased from 12.2 °C to 4.7 °C. The enhanced thermal conductivity and specific heat capacity offer significant cost savings, and the reduced supercooling degree prevent phase separation and pipe blockage. Thus, the developed composites nanofluids can be used as a superior medium for CSP plants.
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