Power Modules for Pulsed Power Applications Using Phase Change Material

Weihua Shao, L. Ran, Zheng Zeng, R. Wu, P. Mawby, Jiang Huaping, D. Kastha, P. Bajpai
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引用次数: 4

Abstract

The current requirement of a pulsed load may be many times of the average value. To prevent over temperature, short-term over current capability is needed. The over current capability of existing power modules is barely a few microseconds, which is mainly constrained by the junction temperature. This study customizes a power module with enhanced short-term current capability using phase change material (PCM). Thanks to the great thermal capacity of PCM during melting, the power module can support pulsed load three times the rated value for tens of seconds with appropriate PCM. To avoid unacceptably increasing thermal resistance, a metal framework is utilized. Two different 3D printed metal frameworks are presented and compared. Device power losses in a grid-connected inverter is calculated, followed by the thermal model for this case study. Simulation is conducted to show the effects of PCM thickness and proportion concerning the phase change time, dynamic thermal response and steady state thermal resistance, followed by the optimization of design using finite element analyses (FEA). Finally, the effect of the PCM is verified through experiment. When the junction temperature of the device is controlled below the limit, the power module can indeed handle the required large current for an intended duration.
使用相变材料的脉冲功率应用的功率模块
脉冲负载的电流要求可能是平均值的许多倍。为了防止过温,需要短期过流能力。现有电源模块的过电流能力仅为几微秒,主要受结温的限制。本研究使用相变材料(PCM)定制了一种具有增强短期电流能力的电源模块。由于PCM在熔化过程中的巨大热容量,功率模块可以在适当的PCM下支持三倍额定值的脉冲负载数十秒。为了避免不可接受地增加热阻,使用了金属框架。介绍并比较了两种不同的3D打印金属框架。计算了并网逆变器中的器件功率损耗,然后建立了本案例研究的热模型。通过仿真分析,揭示了PCM厚度和比例对相变时间、动态热响应和稳态热阻的影响,并利用有限元分析对设计进行了优化。最后,通过实验验证了PCM的效果。当器件的结温被控制在限值以下时,电源模块确实可以在预期的持续时间内处理所需的大电流。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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