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首页> 外文期刊>Journal of Thermal Science and Engineering Applications: Transactions of the ASME >Solidification of Phase Change Material Nanocomposite Inside a Finned Heat Sink: A Macro Scale Model of Nanoparticles Distribution
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Solidification of Phase Change Material Nanocomposite Inside a Finned Heat Sink: A Macro Scale Model of Nanoparticles Distribution

机译:翅片散热器中相变材料纳米复合材料的凝固:纳米粒子分布的宏观模型

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The present work aims at developing a heat transfer model for phase change material nanocomposite (PCMNC)-based finned heat sink to study its heat rejection potential. The proposed model is developed in line with the binary alloy formulation for smaller size nanoparticles. The present study gives a more insight into the nanoparticle distribution while the nanocomposite is undergoing phase change. The nanocomposite is placed in the gap between the fins in a finned heat sink where solidification occurs from the top and lateral sides of fins. The proposed numerical model is based on finite volume method. Fully implicit scheme is used to discretize the transient terms in the governing transport equations. Natural convection in the molten nanocomposite is simulated using the semi-implicit-pressure-linked-equations-revised (SIMPLER) algorithm. Nanoparticle transport is coupled with the energy equation via Brownian and thermophoretic diffusion. Enthalpy porosity approach is used to model the phase change of PCMNC. Scheil rule is used to compute the nanoparticle concentration in the mixture consisting of solid and liquid PCMNC. All the finite volume discrete algebraic equations are solved using the line-by-line tridiagonal-matrix-algorithm with multiple sweeping from all possible directions. The proposed numerical model is validated with the existing analytical and numerical models. A comparison in thermal performance is made between the heat sink with homogeneous nanocomposite and with nonhomogeneous nanocomposite. Finally, the effect of spherical nanoparticles and platelet nanoparticles to the solidification behavior is compared.
机译:本作者的目的旨在开发用于相变材料纳米复合材料(PCMNC)的传热模型 - 基于翅片散热器,以研究其散热电位。所提出的模型与较小型纳米颗粒的二元合金制剂一起开发。本研究进一步了解纳米复合材料经历相变的纳米颗粒分布。将纳米复合材料置于翅片中的翅片之间的间隙中,其中凝固从翅片的顶部和侧面发生凝固。所提出的数值模型基于有限体积法。完全隐含方案用于离散控制传输方程中的瞬态术语。使用半隐式压力连接方程式修订(简单)算法模拟熔融纳米复合材料中的自然对流。纳米粒子传输通过Brownian和硫化机扩散与能量方程相耦合。焓孔隙度方法用于模拟PCMNC的相变。 Scheil规则用于计算由固体和液体PCMNC组成的混合物中的纳米颗粒浓度。所有有限体积离散代数方程都是使用逐行的三角形 - 矩阵算法来解决,从所有可能的方向都扫描。所提出的数值模型与现有的分析和数值模型进行了验证。热性能的比较是在散热器与均匀纳米复合材料和非均匀纳米复合材料之间进行的。最后,比较了球形纳米颗粒和血小板纳米颗粒对凝固行为的影响。

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