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Numerical simulation of a heat sink embedded with a vapor chamber and calculation of effective thermal conductivity of a vapor chamber

机译:嵌有蒸气腔的散热器的数值模拟及蒸气腔有效导热系数的计算

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摘要

This study presents a numerical investigation of a whole set of thermal module, including a plate-fin heat sink embedded with a vapor chamber, subject to the influence of concentrated heat sources. Within the vapor chamber, the internal vapor is assumed as a common heat-transfer interface between the wicks. CFD simulations of the integrated heat sink are carried out with this assumption. The calculated results are in good agreement with the experiments, and show a maximum difference of 6.3% for the hotspot temperature rises. It is found that the area of the heat source has an important influence to the performance of the vapor chamber. The major spreading resistance of the vapor chamber comes from the bottom wall, where a concentrated heat source is applied. In addition, the isotropic and orthotropic approaches are proposed to calculate the effective thermal conductivities of the vapor chamber. By approximating the vapor chamber as a conduction plate, the effective conductivity can be obtained from the analytical solutions of the spreading resistances. The vapor chamber can reduce the spreading resistances sufficiently by its excellent lateral thermal spreading effect, which can be interpreted by the ortho-tropic approach.
机译:这项研究提出了对整个热模块的数值研究,其中包括一个嵌有蒸气室的板翅式散热器,受集中热源的影响。在蒸气室内,内部蒸气被假定为灯芯之间的公共传热界面。在此假设下进行了集成散热器的CFD模拟。计算结果与实验结果吻合良好,并且热点温度升高的最大差异为6.3%。发现热源的面积对蒸气室的性能具有重要影响。蒸气室的主要扩散阻力来自底壁,在底壁上施加了集中的热源。另外,提出了各向同性和正交各向异性的方法来计算蒸气室的有效热导率。通过将蒸气室近似为一个传导板,可以从扩散电阻的解析溶液中获得有效的电导率。蒸气室可以通过其出色的横向热扩散效果充分降低扩散阻力,这可以用正交各向异性方法来解释。

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