A Finite Element Analysis Model for Partial Discharges in Silicone Gel under a High Slew Rate, High-Frequency Square Wave Voltage in Low-Pressure Conditions

Author:

Borghei Moein,Ghassemi MonaORCID

Abstract

Wide bandgap (WBG) devices made from materials such as SiC, GaN, Ga2O3 and diamond, which can tolerate higher voltages and currents compared to silicon-based devices, are the most promising approach for reducing the size and weight of power management and conversion systems. Silicone gel, which is the existing commercial option for encapsulation of power modules, is susceptible to partial discharges (PDs). PDs often occur in air-filled cavities located in high electric field regions around the sharp edges of metallization in the gel. This study focuses on the modeling of PD phenomenon in an air filled-cavity in silicone gel for the combination of (1) a fast, high-frequency square wave voltage and (2) low-pressure conditions. The low-pressure condition is common in the aviation industry where pressure can go as low as 4 psi. To integrate the pressure impact into PD model, in the first place, the model parameters are adjusted with the experimental results reported in the literature and in the second place, the dependencies of various PD characteristics such as dielectric constant and inception electric field on pressure are examined. Finally, the reflections of these changes in PD intensity, duration and inception time are investigated. The results imply that the low pressure at high altitudes can considerably affect the PD inception and extinction criterion, also the transient state conditions during PD events. These changes result in the prolongation of PD events and more intense ones. As the PD model is strongly dependent upon the accurate estimation electric field estimation of the system, a finite-element analysis (FEA) model developed in COMSOL Multiphysics linked with MATLAB is employed that numerically calculates the electric field distribution.

Funder

Air Force Office of Scientific Research

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous)

Reference38 articles.

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1. The Influence of Cavity Size and Location Within Insulation Paper on the Partial Discharge Activities;Pertanika Journal of Science and Technology;2023-10-03

2. Influence of Pressure on the PD and Induced Aging Behavior of Polyimide Insulation Under Repetitive Pulse Voltage;IEEE Transactions on Dielectrics and Electrical Insulation;2023-06

3. A review on insulation challenges towards electrification of aircraft;High Voltage;2023-01-06

4. A Finite Element Analysis Model for Internal Partial Discharges Under DC Voltage;2022 IEEE International Power Modulator and High Voltage Conference (IPMHVC);2022-06-19

5. Simulation and Analysis of Initial Stages of Negative Discharges in Air for Needle-Plane Electrode Configuration;2022 IEEE International Power Modulator and High Voltage Conference (IPMHVC);2022-06-19

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