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Analysis of electric field control methods for foil coils in high-voltage linear actuators

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This paper describes multiple electric field control methods for foil coils in high-voltage coreless linear actuators and their sensitivity to misalignment. The investigated field control methods consist of resistive, refractive, capacitive and geometrical solutions for mitigating electric stress at edges and corners of foil coils. These field control methods are evaluated using 2-D boundary element and finite element methods. A comparison is presented between the field control methods and their ability to mitigate electric stress in coreless linear actuators. Furthermore, the sensitivity to misalignment of the field control methods is investigated.
Rocznik
Strony
629--640
Opis fizyczny
Bibliogr. 14 poz., rys., tab., wz.
Twórcy
  • Eindhoven University of Technology Electrical Engineering Groene Loper 19, 5612AZ Eindhoven, the Netherlands
autor
  • Eindhoven University of Technology Electrical Engineering Groene Loper 19, 5612AZ Eindhoven, the Netherlands
  • Eindhoven University of Technology Electrical Engineering Groene Loper 19, 5612AZ Eindhoven, the Netherlands
Bibliografia
  • [1] Wang P., Cavallini A., and Montanari G., The influence of impulsive voltage frequency on pd features in turn insulation of inverterfed motors. Electrical Insulation and Dielectric Phenomena (CEIDP), 2014 IEEE Conference on, pp. 35-38 (2014).
  • [2] Strobl R., Haverkamp W., Malin G., Fitzgerald F., Evolution of stress control systems in medium voltage cable accessories. in Transmission and Distribution Conference and Exposition, IEEE/PES 2: 843-848 (2001).
  • [3] Donzel L., Greuter F., Christen T., Nonlinear resistive electric field grading part 2: Materials and applications. Electrical Insulation Magazine, IEEE 27: 18-29 (2011).
  • [4] Li J., et. al. Electric field calculation and grading ring optimization of composite insulator for 500 kv ac transmission lines. in Solid Dielectrics (ICSD), 2010 10th IEEE International Conference on, pp. 1-4 (2010).
  • [5] N. Hayashi, et.al. Electric field control by permittivity functionally graded materials and their lightning impulse withstand voltages for Surface breakdown. in Electrical Insulation, Conference Record of the 2002 IEEE International Symposium on, pp. 260-263 (2002).
  • [6] Roberts A., Stress grading for high voltage motor and generator coils. Electrical Insulation Magazine, IEEE 11: 26-31, (1995).
  • [7] Burns N., Eichhorn R., Reid C., Stress controlling semiconductive shields in medium voltage power distribution cables. Electrical Insulation Magazine, IEEE 8: 824, Sept. (1992).
  • [8] E. Sharifi, et.al. Iec qualification test applied to capacitively graded 13.8 kv bar samples energized with repetitive fast pulses. in Electrical Insulation Conference (EIC), 2011, pp. 402-406 (2011).
  • [9] El-kishky H., Experience with development and evaluation of corona suppression systems for hv rotating machines. Dielectrics and Electrical Insulation, IEEE Transactions on 9: 569-576 (2002).
  • [10] van Beek T., Jansen J., Lomonova E., Electric Field Control Methods for Foil Coil in High-Voltage Linear Actuators”, Proceedings of the 10th International Symposium on Linear Drives for Industry Applications (LDIA 2015).
  • [11] T. van Beek, et.al. Electrostatic modeling of cavities inside linear actuators. Journal of Physics: Conference Series, Volume 646, 2015..
  • [12] Electro V9.3 Quick Start Guide. Winnipeg, Canada: Integrated Engineering Software (2015).
  • [13] Christen T., Donzel L., and Greuter F., Nonlinear resistive electric field grading part 1: Theory and simulation. Electrical Insulation Magazine, IEEE 26: 47-59, (2010).
  • [14] Knuffel E., Zaengl W., Knuffel J., High Voltage Engineering Fundamentals, Butterworth-Heinemann (2000).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-77ecd245-c0fd-4dc8-8c86-25213518b46d
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