PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Multivariate calculations of the electrodynamic linear accelerator with a permanent magnet support

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Multivariate calculations of the electrodynamic accelerator with a permanent magnet support and a ferromagnetic core are presented in the paper. The calculations were made with using the Magnetostatic module of Maxwell/ANSYS software. The purpose of these calculations was to determine the size and location of permanent magnets in terms of maximizing the force acting on the projectile. In the presented paper, three cases have been analyzed. In order to perform a comparative analysis of the obtained results of calculations, dimensions of the rails, projectile and outer dimensions of the core were kept constant.
Rocznik
Strony
733--741
Opis fizyczny
Bibliogr. 18 poz., rys., tab.
Twórcy
  • Opole University of Technology, Department of Electrical Engineering and Mechatronics, Opole, Poland
  • Opole University of Technology, Department of Electrical Engineering and Mechatronics, Opole, Poland
  • Opole University of Technology, Department of Electrical Engineering and Mechatronics, Opole, Poland
Bibliografia
  • 1. Chung S.S.M., 2016, Parametric study of possible railgun radiation in postfire stage, IEEE Transactions on Plasma Science, 44, 6, 980-990.
  • 2. Engel T.G., Surls D., Nunnally W.C., 2001, All-electric rifle-caliber launcher with permanent magnet augmentation, IEEE Transactions on Magnetics, 37, 6, 3934-3940.
  • 3. Gieras J.F., Piech Z.J., Tomczuk B., 2011, Linear Synchronous Motors, CRC Press, Taylor & Francis Group, New York.
  • 4. Gosiewski Z., Kłosowski P., 2008, Support of work of electromagnetic gun by using permanent magnets, Bulletin of the Military University of Technology, 57, 3, 87-95.
  • 5. Hric III G.R., Odendaal W.G., 2016, Improving Start-up contact distribution between railgun armature and rails, IEEE Transactions on Plasma Science, 44, 7, 1202-1207.
  • 6. Jin L., Lei B., Zhang Q., Zhu R., 2015, Electromechanical performance of rails with different cross-sectional shapes in railgun, IEEE Transactions on Plasma Science, 43, 5, 1220-1224.
  • 7. Kluszczyński K., Domin J., 2015, Two module electromagnetic launcher with pneumatic assist modelling, computer simulations and laboratory investigations, COMPEL, 34, 3, 691-709.
  • 8. McNab I.R., 1999, The STAR railgun concept, IEEE Transactions on Magnetics, 35, 1, 432-436.
  • 9. Vincent G., Hundertmark S., 2013, Using the hexagonal segmented railgun in multishot mode with three projectiles, IEEE Transactions on Plasma Science, 41, 5, 1431-1435.
  • 10. Waindok A., 2013, Modeling and Measurement Verification of Characteristics for the Permanent Magnet Tubular Linear Actuators, Oficyna Wydawnicza Politechniki Opolskiej, Opole.
  • 11. Waindok A., Piekielny P., 2016, Calculation models of the electrodynamic accelerator (railgun), Przegląd Elektrotechniczny, 92, 9, 246-249.
  • 12. Waindok A., Piekielny P., 2017, Transient analysis of a railgun with permanent magnets support, Acta Mechanica et Automatica, 11, 4, 302-307.
  • 13. Waindok A., Tomczuk B., 2017, Reluctance network model of a permanent magnet tubular motor, Acta Mechanica et Automatica, 11, 3, 194-198.
  • 14. Wajnert D., 2013, Comparison of magnetic field parameters obtained from 2d and 3d finite element analysis for an active magnetic bearing, Proceedings of International Symposium on Electrodynamic and Mechatronic Systems, 73-74.
  • 15. Wang G.H., Xie L., He Y., Song S.Y., Gao J.J., 2016,Moving mesh FE/BE hybrid simulation of electromagnetic field evolution for railgun, IEEE Transactions on Plasma Science, 44, 8, 1424-1428.
  • 16. Wu S., Wang X., Cui S., Zhao W., 2015, Risk evaluation for hybrid excitation compulsator, IEEE Transactions on Plasma Science, 43, 5, 1410-1414.
  • 17. Yamori A., Ono Y., Kubo H., Kono M., Kawashima N., 2001, Development of an induction type railgun, IEEE Transactions on Magnetics, 37, 1, 470-472.
  • 18. Zakrzewski K., Tomczuk B., Koteras D., 2009, Amorphous modular transformers and their 3D magnetic fields calculation with FEM, COMPEL, 28, 3, 583-592.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-d1449089-5fd5-435e-916a-56358842fd4c
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.