硅凝胶和DBC在正重复平方电压下的表面放电特性

Chao Li , Boyuan Cao , Xuebao Li , Xiangchen Liu , Jinjin Cheng , Zhaocheng Liu , Zhibin Zhao , Zhongguang Yang
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引用次数: 4

摘要

硅胶和直接键合铜(DBC)作为高压电源器件的关键部件,分别广泛应用于高压电源器件的绝缘封装中。随着电压等级的提高,硅胶与DBC接口之间的绝缘问题限制了正方波电压下高压电源器件的发展。本文建立了该电压下的实验平台。研究了有机硅凝胶和DBC界面的表面放电特性。为了消除位移电流对正重复平方电压上升和下降阶段产生的放电电流的干扰,同时测量天线测量的高频放电电流和高频磁场,并根据高频放电电流和高频磁场的一一对应关系提取放电电流脉冲。提取并分析了不同电压幅值、频率和占空比下硅胶与DBC界面正向和反向放电电流脉冲的幅值、放电次数和局部放电重复率等具体特征。此外,还研究了正重复电压的频率和占空比对放电起始电压的影响。最后,分析了硅凝胶与DBC在正重复方波电压作用下的表面放电机理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Surface discharge characteristics of silicone gel and DBC under positive repetitive square voltage

Surface discharge characteristics of silicone gel and DBC under positive repetitive square voltage

Silicone gel and direct bonded copper (DBC) as the key components of high voltage power devices are widely used in the insulation packaging of high voltage power devices, respectively. With the increase of the voltage level, the insulation problem between silicone gel and DBC interface limits the development of high voltage power devices under positive square wave voltage. In this paper, an experimental platform under this voltage is established. The surface discharge characteristics of silicone gel and DBC interface are investigated. In order to remove the displacement current interference on the discharge current generated at the rising and falling stage of positive repetitive square voltage, high frequency discharge current and high-frequency magnetic field measured by antennas are simultaneously measured, and the discharge current pulse are extracted based on the one-to-one relationship between high frequency discharge current and high-frequency magnetic field. Furthermore, the specific characteristics of the forward and backward discharge current pulses of interface between silicone gel and DBC, such as amplitude, discharge number and partial discharge repetition rate, under different voltage amplitudes, frequencies and duty cycles are extracted and analyzed. Besides, the influences of frequency and duty cycle of the positive repetitive squarevoltage on the discharge initiation voltages are investigated. Finally, the mechanism of surface discharge between silicone gel and DBC under positive repetitive square wave voltage has been explained.

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来源期刊
Power electronic devices and components
Power electronic devices and components Hardware and Architecture, Electrical and Electronic Engineering, Atomic and Molecular Physics, and Optics, Safety, Risk, Reliability and Quality
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