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首页> 外文期刊>Journal of combustion >Numerical Simulation of the Heat Transfer Behavior of a Zigzag Plate Containing a Phase Change Material for Combustion Heat Recovery and Power Generation
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Numerical Simulation of the Heat Transfer Behavior of a Zigzag Plate Containing a Phase Change Material for Combustion Heat Recovery and Power Generation

机译:包含相变材料的曲折板燃烧换热和发电的传热行为的数值模拟

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摘要

This study presents a numerical analysis of the melting process of phase change materials (PCMs) within a latent heat thermal energy storage (LHTES) system employing zigzag plate. The numerical model used NaCl-MgCl_2 mixture as PCMs and hot air as heat transfer fluid (HTF). An experimental system was built to validate the model, and the experimental data agrees reasonably well with the simulation results. The simulation results revealed the effects of the Reynolds and Stefan numbers and the surface topography of the zigzag plate on the charging process. Besides, the effect of the relationship between Reynolds and Stefan numbers on the charging process under a new boundary condition employing a fixed input power was studied. It is found that by modifying the shape of the zigzag plate surface it is feasible to enhance the heat transfer of the LHTES unit remarkably. The melting rate of PCMs increases with the value of Ste or Re numbers with only one of them changing; however, the melting rate of PCMs decreases with the increasing Ste (or decreasing Re) in a fixed input power condition.
机译:这项研究提出了使用曲折板的潜热热能存储(LHTES)系统中相变材料(PCM)熔化过程的数值分析。数值模型使用NaCl-MgCl_2混合物作为PCM,使用热空气作为传热流体(HTF)。建立了实验系统对模型进行验证,实验数据与仿真结果吻合良好。仿真结果揭示了雷诺数和斯特凡数以及锯齿形板的表面形貌对充电过程的影响。此外,研究了在使用固定输入功率的新边界条件下,雷诺数与Stefan数之间的关系对充电过程的影响。发现通过改变锯齿形板表面的形状,可以显着地提高LHTES单元的热传递是可行的。 PCM的熔化速率随Ste或Re值的增加而增加,其中只有一个改变。但是,在固定输入功率条件下,PCM的熔化速率随Ste的增加(或Re的减少)而降低。

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  • 来源
    《Journal of combustion》 |2016年第2016期|3092508.1-3092508.11|共11页
  • 作者单位

    State Key Laboratory of Multiphase Complex Systems, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, China,Beijing Shenwu Environment & Energy Technology Co., Ltd., Beijing 102299, China;

    Global Energy Interconnection Research Institute, State Grid Corporation of China, Beijing 102211, China;

    State Key Laboratory of Multiphase Complex Systems, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, China;

    School of Engineering and Technology, China University of Geosciences, Beijing 100083, China;

    Birmingham Centre for Thermal Energy Storage, University of Birmingham, Edgbaston, Birmingham B15 2TT, UK;

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