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首页> 外文期刊>Journal of Thermal Science and Engineering Applications: Transactions of the ASME >Conjugate Heat Transfer Using Liquid Metals and Alloys for Enclosures With Solid Conducting Blocks
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Conjugate Heat Transfer Using Liquid Metals and Alloys for Enclosures With Solid Conducting Blocks

机译:使用液态金属和合金对带有固体导电块的外壳进行共轭传热

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摘要

A validated computational model was created to simulate the heat transfer from a heated surface using liquid metals and alloys during conjugate heat transfer. This model explores the effect of the Rayleigh number, Prandtl number, thermal conductivity ratio, and aspect ratio on the Nusselt number along the hot surface. The data will show how to keep the temperature sensitive components along the hot wall cool by maximizing the amount of heat removed from the hot wall. The data show three distinct regions that occur as a function of the Rayleigh number for a fixed k~* and d~*. The data also show that the thermal conductivity ratio between the fluid and the solid conducting block has little effect on the Nusselt number at a fixed Rayleigh number. However, when examining the effect of the aspect ratio on the Nusselt number, two distinct regions can be seen. The results demonstrate that in order to keep the temperature sensitive components cool along the hot wall, one would want to have large Rayleigh and Prandtl numbers. The easiest way to achieve large Rayleigh numbers is by increasing the height of the enclosure. Large Prandtl numbers can be achieved by choosing a fluid that is highly conductive. In addition, the choice of material for the center solid conducting block does not impact the amount of heat removed from the hot wall. However, increased cooling can be achieved by decreasing the spacing between the hot and the cold wall.
机译:创建了经过验证的计算模型,以模拟在共轭传热过程中使用液态金属和合金从受热表面传热。该模型探讨了瑞利数,普朗特数,导热系数和长宽比对沿热表面的Nusselt数的影响。数据将显示如何通过最大化从热壁上带走的热量来使热壁上的温度敏感组件保持凉爽。数据显示了三个不同的区域,这些区域根据固定的k〜*和d〜*的瑞利数而变化。数据还表明,在固定瑞利数下,流体与固体导电块之间的热导率对Nusselt数影响很小。但是,检查宽高比对Nusselt数的影响时,可以看到两个不同的区域。结果表明,为了使热敏组件在热壁上保持凉爽,人们需要具有较大的瑞利数和普朗特数。实现大瑞利数的最简单方法是增加外壳的高度。通过选择高导电性流体可以实现大的Prandtl数。另外,用于中心固体导电块的材料的选择不会影响从热壁带走的热量。然而,可以通过减小热壁和冷壁之间的间隔来实现增加的冷却。

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