综述用于增强太阳能热传导的纳米流体-PCMs 集成解决方案

J. Pereira, Reinaldo Souza, António Moreira, Ana Moita
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摘要

本综述对已发表的有关将 PCM 和纳米流体同时用于太阳能热能储存和转换过程的研究进行了深入分析。此外,还详细讨论了 PCM 和纳米流体的主要热物理性质。一方面,分析了这些类型纳米流体的特性,以及一般类型纳米流体的特性,如热导率和潜热容量。另一方面,还分析了 PCM 的具体特性,例如相变持续时间和相变温度。此外,还详细介绍了在太阳能热应用中使用 PCM 和纳米流体的主要改进技术,包括在纳米增强型 PCM 和具有扩展表面的 PCM 中加入高导热纳米颗粒和其他纳米结构等。关于这些改进技术,研究发现,例如,纳米流体可将基础流体的导热率提高 100%。此外,还有报告称,同时使用 PCM 和纳米流体可提高太阳能热储系统和光伏-纳米增强 PCM 系统的整体效率、热效率和电效率。最后,总结了纳米流体和 PCMs 技术和研究领域的主要局限性和未来研究指南。
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A Review on the Nanofluids-PCMs Integrated Solutions for Solar Thermal Heat Transfer Enhancement Purposes
The current review offers a critical survey on published studies concerning the simultaneous use of PCMs and nanofluids for solar thermal energy storage and conversion processes. Also, the main thermophysical properties of PCMs and nanofluids are discussed in detail. On one hand, the properties of these types of nanofluids are analyzed, as well as those of the general types of nanofluids, like the thermal conductivity and latent heat capacity. On the other hand, there are specific characteristics of PCMs like, for instance, the phase-change duration and the phase-change temperature. Moreover, the main improvement techniques in order for PCMs and nanofluids to be used in solar thermal applications are described in detail, including the inclusion of highly thermal conductive nanoparticles and other nanostructures in nano-enhanced PCMs and PCMs with extended surfaces, among others. Regarding those improvement techniques, it was found that, for instance, nanofluids can enhance the thermal conductivity of the base fluids by up to 100%. In addition, it was also reported that the simultaneous use of PCMs and nanofluids enhances the overall, thermal, and electrical efficiencies of solar thermal energy storage systems and photovoltaic-nano-enhanced PCM systems. Finally, the main limitations and guidelines are summarized for future research in the technological and research fields of nanofluids and PCMs.
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