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Modeling and Simulation of an Ultra-Fast Resonant DC Circuit Breaker Based on Current Source Module

  • Trevor Arvin
  • , Jiangbiao He
  • , Nathan Weise

Producción científica: Conference contributionrevisión exhaustiva

1 Cita (Scopus)

Resumen

A novel hybrid circuit breaker is proposed that utilizes a fast-ramping resonant current source and an ultra-fast vacuum interrupter (VI) for medium voltage dc (MVDC) applications. The design offers a compromise between mechanical and purely solid-state dc circuit breakers with high efficiency and fast fault interruption speed. The breaker consists of 3 parallel branches: the resonant current source (RCS) module, vacuum interrupter, and energy absorption branch. In normal operation, the vacuum interrupter is closed and conducts load current, resulting in high efficiency. During fault operation, the resonant current source ramps up to oppose the fault current in the vacuum interrupter to force a zero current crossing. In post-fault operation, the metal oxide varistor in the energy absorption branch clamps overvoltages and dissipates residual line current and energy. Gallium Nitride switching devices are used to configure the RCS modules to achieve higher frequencies and lower switching losses than the conventional silicon counterparts. Modeling and simulation results from PLECS software are presented to prove the functionality of this design in a 2.4 kV MVDC propulsion system for electric aircraft.

Idioma originalEnglish
Título de la publicación alojada2020 IEEE 9th International Power Electronics and Motion Control Conference, IPEMC 2020 ECCE Asia
Páginas146-153
Número de páginas8
ISBN (versión digital)9781728153018
DOI
EstadoPublished - nov 29 2020
Evento9th IEEE International Power Electronics and Motion Control Conference, IPEMC 2020 ECCE Asia - Nanjing, China
Duración: nov 29 2020dic 2 2020

Serie de la publicación

Nombre2020 IEEE 9th International Power Electronics and Motion Control Conference, IPEMC 2020 ECCE Asia

Conference

Conference9th IEEE International Power Electronics and Motion Control Conference, IPEMC 2020 ECCE Asia
País/TerritorioChina
CiudadNanjing
Período11/29/2012/2/20

Nota bibliográfica

Publisher Copyright:
© 2020 IEEE.

Financiación

Partial support of this research was provided by the Woodrow W. Everett, Jr. SCEEE Development Fund in cooperation with the Southeastern Association of Electrical Engineering Department Heads under grant SCEEE-19-02. Also, the authors would like to acknowledge the partial support by the U.S. Department of Energy Advanced Research Projects Agency-Energy (ARPA-E) program under Award Number DEAR0001108.

FinanciadoresNúmero del financiador
Southeastern Association of Electrical Engineering Department HeadsSCEEE-19-02
Woodrow W. Everett
Advanced Research Projects Agency - EnergyDEAR0001108

    ASJC Scopus subject areas

    • Energy Engineering and Power Technology
    • Electrical and Electronic Engineering
    • Control and Optimization

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