REVIEW AND EVALUATION OF NANOFLUIDS AS PROSPECT THERMAL ENERGY STORAGE MATERIAL FOR CONCENTRATED SOLAR POWER APPLICATION

C. L. Majadas, J. M. Peñaloga, R. Salvador
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Abstract

Solar energy intermittency is one of the main challenges encountered by thermal energy storage systems in concentrated solar power plants due to the low heat transfer rates during charging operations. The critical thermophysical property to be considered for combating this problem is the thermal conductivity. Thus, base fluids with dispersed nanoparticles, better known as nanofluids, have become materials with great potential since they enhance efficiency during charging intervals by increasing the charged material's thermal conductivity by up to 89 %. By gathering and analyzing results from various studies in nanofluids, it was observed that there is a considerable improvement in the thermal storage material compared with the base fluid alone. There is also an increase in the thermal conductivity as nanoparticles are added. Obtaining an increase as great as 99 % allows faster rates of heat transfer. Overall, this may significantly improve the efficiency of thermal energy storage systems in concentrated solar power plants.
纳米流体作为聚光太阳能储能材料的研究进展与评价
太阳能间歇性是聚光太阳能电站蓄热系统面临的主要挑战之一,因为它在充电过程中传热率低。为了解决这个问题,需要考虑的关键热物理性质是导热性。因此,具有分散纳米颗粒的基液,即纳米流体,已成为具有巨大潜力的材料,因为它们在充电间隔期间通过将带电材料的热导率提高高达89%来提高效率。通过收集和分析纳米流体的各种研究结果,观察到与单独的基础流体相比,储热材料有相当大的改进。随着纳米颗粒的加入,导热系数也有所增加。获得高达99%的增加允许更快的传热速率。总的来说,这可能会显著提高聚光太阳能发电厂的热能储存系统的效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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