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Experimental study on latent thermal energy storage system with gradient porosity copper foam for mid-temperature solar energy application

机译:梯度孔隙铜泡沫潜热储能系统用于中温太阳能的实验研究

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摘要

Latent thermal energy storage is a promising option for the flexible and efficient use of solar energy. However, the low conductivity of phase-change materials limits its practical applications. This study proposes a type of gradient porosity metal foam as a heat transfer-enhancement system to overcome the above-mentioned drawback. Specifically, the thermal performances of a gradient copper foam and commonly used homogeneous copper foam are experimentally investigated and compared in a mid-temperature solar energy storage system. In this study, two lab-scale shell-and-tube units are built with A153 as the phase-change material in the annulus. The two types of copper foam are embedded in the units, gradient porosity copper foam in one unit and homogeneous copper foam in the other. Silicon oil is used as the heat transfer fluid flowing in the inner tube. The charging and discharging processes of the two thermal energy storage units are analyzed in detail. Compared to the embedded homogeneous metal foam in the phase-change material, which has been studied by numerous researchers previously, the experimental data indicate that the gradient porosity copper foam can significantly enhance the heat transfer capacity. Moreover, it improved temperature uniformity in the thermal energy storage unit and reduced the overall melting time by 37.6%. This study is the first to confirm that the application of gradient porosity metal foam can enhance the performance of an energy storage system. This conclusion is important for developing thermal energy storage systems, and indeed, can promote the utilization of solar energy at medium temperatures.
机译:潜在的热能存储是灵活有效地利用太阳能的有希望的选择。但是,相变材料的低电导率限制了其实际应用。这项研究提出一种类型的梯度孔隙率金属泡沫作为传热增强系统,以克服上述缺点。具体地,在中温太阳能存储系统中,实验研究并比较了梯度铜泡沫和常用的均质铜泡沫的热性能。在这项研究中,两个实验室规模的管壳单元均以A153作为环空中的相变材料建造而成。两种类型的泡沫铜被嵌入单元中,梯度孔隙度的泡沫铜在一个单元中,均质的泡沫在另一单元中。硅油用作在内管中流动的传热流体。详细分析了两个储热单元的充放电过程。相较于先前已被众多研究人员研究的相变材料中嵌入的均质金属泡沫,实验数据表明,梯度孔隙率的铜泡沫可以显着提高传热能力。此外,它提高了热能存储单元中的温度均匀性,并使总熔化时间减少了37.6%。这项研究是首次证实梯度孔隙率金属泡沫的应用可以增强储能系统的性能。该结论对于开发热能存储系统很重要,并且确实可以促进中等温度下太阳能的利用。

著录项

  • 来源
    《Applied Energy》 |2020年第1期|114472.1-114472.12|共12页
  • 作者

  • 作者单位

    Lanzhou Univ Technol Sch Energy & Power Engn Lanzhou 730050 Peoples R China|IEE CAS Key Lab Solar Thermal Energy & Photovolta Syst Beijing 100190 Peoples R China|Chinese Acad Sci Inst Elect Engn Joint Lab Beijing Peoples R China|Guangdong Five Star Solar Energy Co Ltd Guangzhou Peoples R China;

    Lanzhou Univ Technol Sch Energy & Power Engn Lanzhou 730050 Peoples R China|IEE CAS Key Lab Solar Thermal Energy & Photovolta Syst Beijing 100190 Peoples R China;

    IEE CAS Key Lab Solar Thermal Energy & Photovolta Syst Beijing 100190 Peoples R China;

    Lanzhou Univ Technol Sch Energy & Power Engn Lanzhou 730050 Peoples R China;

    IEE CAS Key Lab Solar Thermal Energy & Photovolta Syst Beijing 100190 Peoples R China|Chinese Acad Sci Inst Elect Engn Joint Lab Beijing Peoples R China|Guangdong Five Star Solar Energy Co Ltd Guangzhou Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Homogeneous copper foam; Gradient porosity copper foam; Shell-and-tube thermal energy storage; Phase change material;

    机译:均质泡沫铜;梯度孔隙率铜泡沫;壳管式热能存储;相变材料;

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