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Thermal and thermo-mechanical design of an integrated substrate and heat sink for planar power module

机译:平面电源模块的集成基板和散热器的热和热机械设计

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We report on the development of an integrated substrate and heat sink for a planar power module with the aim of improving the thermal and reliability performance whilst reducing the manufacturing cost. Finite element modelling and simulations have been used to verify the selection of the materials and optimise the structure of the integrated substrate and heat sink. The simulation results reveal that replacing the Al alloy and Al-SiC composite with ceramic in the heat sink can significantly reduce the creep strain accumulation, and thus improve the reliability of the solder joint mounting the DBC substrate on the heat sink. Impinging jet coolers (heat sinks) can achieve better thermal performance than U-shape channel coolers but require increased pumping power. Plastic coolers are only effective with high flow rate and high pumping power, while a strong ceramic and Al alloy impinging jet cooler has excellent thermal performance, e.g. achieving coefficeint of heat exchange 7500 to 31,100 W.m-2.°C(Exp -1) under flow rate of 7 to 26 mL/s and pumping power of 0.06 to 3.4 W. The good agreement between the simulations and thermal test results validates that the simulations are accurate enough to investigate the effects of the materials, structure and flow rates on the thermal performance.
机译:我们报告了用于平面电源模块的集成基板和散热器的开发,旨在提高散热和可靠性,同时降低制造成本。有限元建模和仿真已用于验证材料的选择并优化集成基板和散热器的结构。仿真结果表明,在散热器中用陶瓷代替铝合金和Al-SiC复合材料可以显着减少蠕变应变的累积,从而提高将DBC基板安装在散热器上的焊点的可靠性。撞击式射流冷却器(散热器)比U形通道冷却器具有更好的热性能,但需要增加泵送功率。塑料冷却器只有在高流量和高泵送功率的情况下才有效,而强力的陶瓷和铝合金撞击射流冷却器则具有出色的热性能,例如。在7至26 mL / s的流速和0.06至3.4 W的泵浦功率下实现7500至31,100 Wm-2。°C(Exp -1)的热交换系数。仿真与热测试结果之间的良好一致性验证了模拟足够精确,可以研究材料,结构和流速对热性能的影响。

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