Numerical Simulation and Kalman-based Control of a Hall Thruster for CubeSats

Autores

  • Hudson Marques Costa Universidade de Brasília
  • Rodrigo Andres Miranda Cerda
  • José Leonardo Ferreira
  • Daniel Maurício Muñoz Arboleda

Palavras-chave:

Electric propulsion, satellites, Kalman Filter Extended, Particle-In-Cell simulation

Resumo

 

   

Biografia do Autor

  • Rodrigo Andres Miranda Cerda

     

     
  • José Leonardo Ferreira

     

     
  • Daniel Maurício Muñoz Arboleda

     

     

Referências

KOKAL, U. et al. Development of the new bustlab hall thruster with internal coaxial hollow cathode. In: 53rd AIAA/SAE/ASEE Joint Propulsion Conference. [S.l.: s.n.], 2017. p. 4810.

MARTINS, A. et al. Preliminary experimental results of the phall ii-c with improved magnetic circuit design and hollow cathode. In: IOP PUBLISHING. Journal of Physics: Conference Series. [S.l.], 2019. v. 1365, n. 1, p. 012025.

MARTINS, A. A.; RODRIGO, M.; FERREIRA, J. L. Magnetic field design for a strongly improved phall thruster. In: IOP PUBLISHING. Journal of Physics: Conference Series. [S.l.], 2017. v. 911, n. 1, p. 012024.

FERREIRA, J. L. et al. Development of a solar electric propulsion system for the first brazilian deep space mission iepc-2017-166. 2017.

LAPENTA, G. Particle in cell methods with application to simulations in space weather. Centrum voor Plasma Astrofysica.–Leuven, 2010.

KALMAN, R. E. A new approach to linear filtering and prediction problems. 1960.

BROWN, R. G.; HWANG, P. Y. Introduction to random signals and applied kalman filtering: with matlab exercises and solutions. Introduction to random signals and applied Kalman filtering: with MATLAB exercises and solutions, 1997.

GOEBEL, D. M.; KATZ, I. Fundamentals of electric propulsion: ion and Hall thrusters. [S.l.]: John Wiley & Sons, 2008.

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Publicado

2025-11-10