低压条件对微孔洞局部放电影响的有限元分析

M. Borghei, M. Ghassemi
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引用次数: 7

摘要

航空业作为二氧化碳的主要生产者之一,预计其碳排放量将有所减少。虽然大型制造商和政府机构都押注于更电气化的飞机(很快就会全部电气化),以减少该行业对化石燃料的依赖,但未来30年仍有一些重大里程碑要实现。其中,提高系统的比功率,有望取代燃油发动机,是主要目标之一。实现这一目标的一项使能技术是基于宽带隙(WBG)的功率转换,这是一项提高电气系统效率的有前途的技术。然而,这些系统产生的高压、高频、快速上升的方电压所引起的局部放电(pd)不仅会危及绝缘系统,而且在高海拔地区的运行也可能成为电源转换器设计中的另一个改变游戏规则的因素。本研究提出了压力影响与短上升时间对局部放电各种特性的串联影响,包括但不限于局部放电真电荷量和持续时间。结果表明,恶劣的环境条件和短上升时间的结合如何导致更强烈和更长时间的放电。此外,它还表明,在海平面上具有微不足道的PD活动的微空洞可能在更高海拔地区变成严重的威胁。在本项目中,基于文献中找到的实验数据,使用COMSOL Multiphysics与MATLAB接口来模拟PD识别过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of Low-Pressure Condition Impact on Partial Discharge in Micro-Voids using Finite-Element Analysis
The aviation industry, as one of the major CO2 producers, anticipates a reduction in its carbon emission. While big manufacturers and governmental agencies are betting on the more- (and soon all-) electrified aircraft to reduce the dependency of this industry on fossil fuels, there are major milestones to be reached in the next three decades. Among those, enhancing the specific power of systems, that are expected to substitute the fuel-based engines, is one of the primary targets. An enabling technology to achieve this goal is the wide bandgap (WBG)-based power converting, a promising technology toward increasing the efficiency of electrical systems. However, not only the partial discharges (PDs) -induced by the high voltage, high-frequency, fast-rise square voltages generated by these systems- endanger the insulation system, but also the operation at higher altitudes can be another game-changing factor in the design of power converters. This study puts forth the investigation of the pressure impact in tandem with the impact of short rise-times on various PD characteristics including but not limited to PD true charge magnitude and duration. The results show how the incorporation of harsh environmental conditions and short rise times lead to more intense and prolonged discharges. Moreover, it shows that micro-voids that have negligible PD activities at sea level can turn into serious threats at higher altitudes. In this project, COMSOL Multiphysics interfaced with MATLAB is used to simulate the PD identification process based on the experimental data found in the literature.
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