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A Numerical Analysis of Conductive Heat Transfer in Cylindrical Thermal Energy Storage Composites

机译:圆柱型蓄热复合材料导热的数值分析

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Composite thermal energy storage (TES) materials comprised of highly thermally conductive and thermally capacitive constituent phases have been shown to act as highly responsive thermal heatsinks. Such materials are advantageous for applications involving non-steady heat generation by rapidly transporting heat away from a hot interface, thereby reducing transient hot spots at that interface. Previous research into composite TES materials has been limited to the case of conductive heat transfer in lamellar composites within a Cartesian coordinate system. In contrast, both time-dependent conductive heat transfer, as well as the optimal volume fraction and distribution of constituent phases in TES composites in cylindrical and spherical coordinate systems are poorly understood. Here, we use a finite difference method to investigate time-dependent conductive heat transfer in TES composites for cylindrical geometries with different constituent phase fraction, geometries, and distribution of phases, to investigate time-dependent conductive heat transfer in TES composites for cylindrical geometries. Numerical simulations are completed with varying geometric designs and with a constant heat flux or constant temperature boundary condition. We also identify characteristic behavior under these different boundary conditions and geometries and discuss the length scales over which different behaviors are observed.
机译:由高导热性和热电容性组成相组成的复合热能存储(TES)材料已显示出可作为高响应性散热片的功能。这样的材料对于通过快速将热量从热界面移走从而减少该界面处的瞬态热点而对于涉及不稳定热量产生的应用而言是有利的。以前对复合TES材料的研究仅限于在笛卡尔坐标系内层状复合材料中进行传导传热的情况。相反,对于时间相关的传导热以及圆柱和球坐标系中TES复合材料的最佳体积分数和组成相的分布知之甚少。在这里,我们使用有限差分法研究具有不同组成相分数,几何形状和相分布的圆柱几何形状的TES复合材料中随时间变化的传导热,以研究圆柱几何形状的TES复合材料中随时间变化的传导热。数值模拟是通过不同的几何设计以及恒定的热通量或恒定的温度边界条件完成的。我们还确定了在这些不同边界条件和几何条件下的特征行为,并讨论了观察到不同行为的长度尺度。

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