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Lifetime extension through Tj equalisation by use of intelligent gate driver with multi-chip power module

机译:通过使用具有多芯片电源模块的智能栅极驱动器,通过Tj均衡延长使用寿命

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Typical high-current power modules used in traction and wind generation contain several dies in parallel. Non-ideal geometries and electrical parameter variations cause an unequal aging of each die which limits the effectiveness of using parallel devices. This paper presents an intelligent power module with a TSEP-based junction temperature measurement and internal temperature equalisation for extending its operational lifetime. As the magnitude and number of junction temperature cycles strongly dictate the power module lifetime, this paper focuses on the quantification of the lifetime gain via the application of common automotive drive cycles. Thus, a general thermal model is first deduced from the experimental results. The lifetime is then estimated using a stress-counting rainflow algorithm, a pre-determined damage law and a linear damage accumulation rule. Finally, in order to illustrate the lifetime extension, 160 drive cycles, including the legislatives drive cycles, are simulated. A lifetime gain of up to two times can be expected with the temperature equalisation method. Therefore, the initial investment on the developed intelligent power module is justified by the benefit of the large gain in lifetime and of the end-of life indication functions.
机译:用于牵引和风力发电的典型大电流功率模块包含多个并联的模具。非理想的几何形状和电参数变化会导致每个管芯的老化不均,从而限制了使用并行器件的效率。本文提出了一种智能电源模块,该模块具有基于TSEP的结温测量和内部温度均衡功能,以延长其使用寿命。由于结温循环的大小和数量强烈地决定了电源模块的使用寿命,因此本文着重于通过应用常见的汽车驱动循环来量化使用寿命的增长。因此,首先从实验结果中推导出一般的热模型。然后使用应力计数雨流算法,预定损伤定律和线性损伤累积规则估算寿命。最后,为了说明使用寿命的延长,模拟了160个驾驶周期,包括立法驾驶周期。使用温度均衡方法可以预期获得高达两倍的使用寿命。因此,由于寿命的大幅增加和寿命终止指示功能的好处,证明了对已开发的智能电源模块的初始投资是合理的。

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