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A conjugate heat transfer model for unconstrained melting of macroencapsulated phase change materials subjected to external convection

机译:共轭传热模型,用于不受外部对流影响的大封装相变材料的无约束熔化

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摘要

A new conjugate heat transfer model for unconstrained melting of macroencapsulated phase change material subjected to external convection is presented. Flow and heat transfer processes are modeled for the phase change material, the capsule wall and the external heat transfer fluid. The solvers for each region operate in a segregated and sequential manner and are coupled by mixed thermal boundary conditions. For the description of the solid body motion in unconstrained melting, the enthalpy-porosity method is modified. The solid body surface is reconstructed from the liquid volume fraction field for every time step by a triangulated isosurface using a marching tetrahedra technique. Based on computation of the forces exerted on the solid, the motion of the solid is determined iteratively in a strong coupling between solid velocity and pressure. The new conjugate heat transfer solver is utilized to simulate the commonly experimentally and numerically investigated scenario of a spherically encapsulated phase change material immersed in a water bath. The coupled flow and heat transfer is investigated for a natural convection dominated mixed convection problem with a Richardson number of 50 • 10~3 and Stefan numbers of 0.075, 0.1, 0.15, 0.2 and 0.25. Contrary to the commonly made assumption, the resulting capsule wall temperature is transient and highly non-uniform. The differences in melting times range from 50.7 to 67.5% between the consideration of external heat transfer and the assumption of constant uniform wall temperatures.
机译:提出了一种新的共轭传热模型,该模型可以不受外界对流的影响而大范围封装相变材料。对相变材料,胶囊壁和外部传热流体的流动和传热过程进行了建模。每个区域的求解器以隔离和顺序的方式运行,并通过混合热边界条件耦合。为了描述无约束熔化中的固体运动,对焓-孔隙率方法进行了修改。使用行进四面体技术,通过三角等值面从每个时间步的液体体积分数场重建固体表面。根据施加在固体上的力的计算,以固体速度和压力之间的强耦合迭代地确定固体的运动。新的共轭传热求解器用于模拟将球形封装的相变材料浸入水浴中的常规实验和数值研究方案。研究了自然对流占优的Richardson数为50•10〜3且Stefan数为0.075、0.1、0.15、0.2和0.25的自然对流占主导的混合对流问题。与通常的假设相反,得到的胶囊壁温度是瞬时的并且高度不均匀。在考虑外部传热和假设壁温恒定一致之间,熔化时间的差异在50.7至67.5%的范围内。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2020年第3期|119205.1-119205.12|共12页
  • 作者

  • 作者单位

    Ostbayerische Technische Hochschule (OTH) Amberg-Weiden Kaiser-Wilhelm-Ring 23 Amberg 92224 Germany Friedrich-Alexander-Universitat (FAU) Erlangen-Nuernberg Erlangen 91054 Germany;

    Ostbayerische Technische Hochschule (OTH) Amberg-Weiden Kaiser-Wilhelm-Ring 23 Amberg 92224 Germany;

    Friedrich-Alexander-Universitat (FAU) Erlangen-Nuernberg Erlangen 91054 Germany Fraunhofer UMSICHT Institutsteil Sulzbach-Rosenberg Sulzbach-Rosenberg 92237 Germany;

  • 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

    Melting; Transient conjugate heat transfer; Fluid-structure interaction; Mixed convection; OpenFOAM®;

    机译:融化;瞬态共轭传热;流固耦合混合对流;OpenFOAM®;

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