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Analysis of Theoretical Limits of Forced-Air Cooling Using Advanced Composite Materials With High Thermal Conductivities

机译:使用高导热率的先进复合材料强制风冷的理论极限分析

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Cooling systems take a significant portion of the total mass and/or volume of power electronic systems. In order to design a converter with high power density, it is necessary to minimize the converter's cooling system volume for a given maximum tolerable thermal resistance. This paper theoretically investigates whether the cooling system volume can be significantly reduced by employing new advanced composite materials like isotropic aluminum/diamond composites or anisotropic highly orientated pyrolytic graphite. Another strategy to improve the power density of the cooling system is to increase the rotating speed and/or the diameter of the fan, which is limited by increasing power consumption of the fan. Fan scaling laws are employed in order to describe volume and thermal resistance of an optimized cooling system (fan plus heat sink), resulting in a single compact equation dependent on just two design parameters. Based on this equation, a deep insight into different design strategies and their general potentials is possible. The theory of the design process is verified experimentally for cooling a 10 kW converter. Further experimental results showing the result of the operation of the optimized heat sink are also presented.
机译:冷却系统占电力电子系统总质量和/或体积的很大一部分。为了设计具有高功率密度的转换器,必须在给定的最大容许热阻的情况下最小化转换器的冷却系统体积。本文从理论上研究了是否可以通过使用新型的新型复合材料(如各向同性的铝/金刚石复合材料或各向异性的高度取向的热解石墨)来显着降低冷却系统的体积。改善冷却系统的功率密度的另一种策略是增加风扇的转速和/或直径,这受风扇功率消耗增加的限制。采用风扇定标定律来描述优化的冷却系统(风扇和散热器)的体积和热阻,从而得出仅取决于两个设计参数的单个紧凑方程式。基于此方程式,可以深入了解不同的设计策略及其总体潜力。设计过程的理论已通过实验验证,可用于冷却10 kW转换器。还提供了进一步的实验结果,显示了优化散热器的运行结果。

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