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Power Electronics Cooling Effectiveness Versus Thermal Inertia

机译:电力电子冷却效率与热惯性

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摘要

Today, the popularity of power electronics integration is increasing. Despite the prospect of fully integrated module, including features like driving and control electronics, protection, power integration has not taken-off for medium to high power electronics applications. Manufacturing issues such as yield, reliability and return-on-investment for a new fabrication line are the major blocking points. As a first step toward integrated modules, integration of the cooling system appears realistic and cost effective. Increasing the cooling effectiveness could double the output current of an inverter while using the same amount of silicon. On the other hand, integrated cooling leads to small thermal inertia, which can generate high temperature variation under load cycling condition. This paper highlights the relationship between cooling effectiveness and thermal inertia. Typical performances of several cooling systems are compared under load cycling condition to explain how to take into account the variation of the losses in the choice of a cooling technique at the design stage. As an example, a standard liquid cooled plate performed similar to an integrated microchannel network for specific load variation frequencies.
机译:如今,电力电子集成的普及程度正在增加。尽管有望实现完全集成的模块,包括驱动和控制电子,保护等功能,但对于中高功率电子应用而言,电源集成尚未普及。主要问题是新生产线的产量,可靠性和投资回报等制造问题。作为集成模块的第一步,冷却系统的集成显得现实且具有成本效益。在使用相同数量的硅的情况下,提高冷却效率可以使逆变器的输出电流增加一倍。另一方面,集成冷却导致较小的热惯性,在负载循环条件下会产生高温变化。本文重点介绍了冷却效率与热惯性之间的关系。在负载循环条件下比较了几种冷却系统的典型性能,以说明在设计阶段如何在选择冷却技术时考虑损耗的变化。例如,对于特定的负载变化频率,标准液冷板的性能类似于集成的微通道网络。

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