Nonlinear Resistive Electric Field Grading in High-Voltage, High-Power Wide Bandgap Power Module Packaging

被引:1
|
作者
Tousi, Maryam Mesgarpour [1 ]
Ghassemi, Mona [1 ]
机构
[1] Virginia Polytech Inst & State Univ, ECE Dept, Blacksburg, VA 24061 USA
关键词
Nonlinear field dependent conductivity (FDC) materials; protruding substrate; electric field control; wideband gap power electronic modules;
D O I
10.1109/ecce.2019.8913210
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Wide bandgap (WBG) power modules made from materials such as SiC and GaN (and soon Gm(2)O(3) and diamond) able to tolerate higher voltages and currents than Si-based modules are the most promising solution to reducing the size and weight of power electronics systems. Using higher blocking voltages for WBG modules and not increasing the insulating dimensions of the module to an appropriate size, will increase electric field stress within the module. The higher electric stress, the more risk for unacceptable partial discharge (PD) activity and in turn, gradual insulation degradation, leading to breakdown and the module failure. The insulation material in the power modules vulnerable to PDs is silicone gel, which is used for encapsulation. Thus, electric field reduction techniques are proposed to address this issue. The proposed geometrical techniques cannot solve alone this issue. In this paper, we introduce a new method that is a combination of applying nonlinear field dependent conductivity (FDC) materials to high electric stress regions with geometrical techniques that can thoroughly address the electrical field enhancement issue within WBG modules.
引用
收藏
页码:7124 / 7129
页数:6
相关论文
共 50 条
  • [21] Module of programed high-voltage power source
    Grigor'ev, V.F.
    Danilevich, V.V.
    Pribory i Tekhnika Eksperimenta, 1994, (02):
  • [22] Ultrafast photoconductive switch with high-voltage and high-power
    Niu, YX
    Wang, YF
    ELECTRO-OPTIC AND SECOND HARMONIC GENERATION MATERIALS, DEVICES, AND APPLICATIONS, 1996, 2897 : 396 - 399
  • [23] HIGH-POWER HIGH-VOLTAGE PULSE-GENERATOR
    VERKHOVSKII, SY
    LYULYAEV, AV
    FLAT, FA
    INSTRUMENTS AND EXPERIMENTAL TECHNIQUES, 1985, 28 (04) : 841 - 842
  • [24] ELECTROMAGNETIC EFFECTS OF HIGH-VOLTAGE HIGH-POWER EQUIPMENT
    SALAMA, MMA
    HACKAM, R
    IEEE TRANSACTIONS ON POWER APPARATUS AND SYSTEMS, 1984, 103 (06): : 1493 - 1501
  • [25] High-voltage insulation of a high-power pulse transformer
    Ratakhin N.A.
    Fedushchak V.F.
    Russian Physics Journal, 1999, 42 (12) : 996 - 1000
  • [26] HIGH-POWER HIGH-VOLTAGE PULSE GENERATOR.
    Verkhovskii, S.Ya.
    Lyulyaev, A.V.
    Flat, F.A.
    Instruments and experimental techniques New York, 1985, 28 (4 pt 1): : 841 - 843
  • [27] Original design of field grading materials for high voltage power module applications
    Trong Trung Le
    Valdez-Nava, Zarel
    Belijar, Guillaume
    Diaham, Sombel
    Laudebat, Lionel
    Fetouhi, Louiza
    Khazaka, Rabih
    PROCEEDINGS OF THE 2020 3RD IEEE INTERNATIONAL CONFERENCE ON DIELECTRICS (ICD 2020), 2020, : 313 - 316
  • [28] Original design of field grading materials for high voltage power module applications
    Le, Trong Trung
    Valdez-Nava, Zarel
    Belijar, Guillaume
    Diaham, Sombel
    Laudebat, Lionel
    Fetouhi, Louiza
    Khazaka, Rabih
    Proceedings of the 2020 IEEE 3rd International Conference on Dielectrics, ICD 2020, 2020, : 313 - 316
  • [29] PERFORMANCE AND DURABILITY VALIDATION OF VOLTAGE BLOCKING TECHNOLOGIES TO ENABLE DIRECT COOLED HIGH-VOLTAGE, HIGH-POWER MODULE
    Iradukunda, Ange-Christian
    Huitink, David
    Gebrael, Tarek
    Miljkovic, Nenad
    PROCEEDINGS OF ASME 2021 INTERNATIONAL TECHNICAL CONFERENCE AND EXHIBITION ON PACKAGING AND INTEGRATION OF ELECTRONIC AND PHOTONIC MICROSYSTEMS (INTERPACK2021), 2021,
  • [30] A High-Power High-Voltage Power Supply for Long-Pulse Applications
    Pokryvailo, Alex
    Carp, Costel
    Scapellati, Clifford
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2010, 38 (10) : 2604 - 2610