Nonlinear Field Dependent Conductivity Materials for Electric Field Control within Next-Generation Wide Bandgap Power Electronics Modules

M. Tousi, M. Ghassemi
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引用次数: 22

Abstract

We are witnessing an excitement in the research community to develop next-generation wide bandgap (WBG) power electronics. The superior characteristics of WBG materials regarding their operational capability at higher voltages, temperatures (200°C) and switching frequencies in comparison with commercial Silicon devices, has made them auspicious materials for the future power electronics. Increased voltage blocking capability and at the same time, an interest in high-power density designs can enhance the local electric field, in particular, at the edges of the metalized substrate. The increased electric field can become large enough to lead to severe partial discharges (PDs) within the module and thus the failure and reduction of the reliability of the insulation system. This paper shows that applying nonlinear field dependent conductivity (FDC) materials as a coating applied to highly stressed regions combined with a protruding substrate design can well address high field issue within high-voltage high-power-density modules.
下一代宽带隙电力电子模块中用于电场控制的非线性场相关导电材料
我们正在目睹研究社区开发下一代宽带隙(WBG)电力电子产品的兴奋。与商用硅器件相比,WBG材料在更高电压、温度(200°C)和开关频率下的工作能力优越,使其成为未来电力电子器件的吉祥材料。提高电压阻断能力,同时,对高功率密度设计的兴趣可以增强局部电场,特别是在金属化基板的边缘。增加的电场可能变得足够大,导致模块内严重的局部放电(pd),从而导致绝缘系统的故障和可靠性降低。本文表明,将非线性场相关电导率(FDC)材料作为涂层应用于高应力区域,结合突出的衬底设计,可以很好地解决高压高功率密度模块中的高场问题。
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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