Analysis and Design of a Pulsed Power Generator for a Low-Energy Magnetic Pulse Welding System

被引:0
|
作者
Kwon, Young-Min [1 ]
Hwang, Min-Wook [1 ]
Ko, Kwang-Cheol [1 ]
机构
[1] Hanyang Univ, Dept Elect Engn, 222 Wangsimni Ro, Seoul 04763, South Korea
关键词
fast rise time; high induced current; magnetic pulse welding; pulse forming network; pulsed power supply; JOINTS;
D O I
10.3390/electronics12244921
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Magnetic pulse welding (MPW) is a joining method that uses Lorentz force generated from an electromagnetic field. This method not only has the advantage of not causing thermal deformation of the material and no by-products compared to the method of joining by melting by heat but also enables the joining of dissimilar metals rather than the joining of the same metal. Joining dissimilar metals can reduce the weight of mechanical devices and apply them to various fields. Recent research on MPW has focused on the characteristics of bonding according to the material or structure of metal rather than on pulse power research that generates the main factor of operation. However, in the operation of MPW, a Lorentz force is generated by the induced current caused by the electromotive force created in the flyer tube and the external magnetic field in the actuator. Therefore, it is necessary to analyze and optimize the pulse power to improve reliability and to miniaturize the system to expand the MPW utilization range. In this paper, we analyzed MPW operation according to a section of the pulse power output waveform. A condition for obtaining the maximum current in the flyer tube was proposed, and a plateau-shaped waveform was derived as an ideal output waveform capable of maintaining the Lorentz force. Through analysis, the proposed pulse power device is designed as a pulse-forming network (PFN) that generates a plateau output waveform. The design specification is that the circuit of PFN (type E) is designed so that the output waveform is pulse width 10 (mu s) and the maximum output current is 100 (kA), and it is verified by simulation.
引用
收藏
页数:11
相关论文
共 50 条
  • [41] A novel spray generator for low-energy oil burners
    Etzold, M.
    Han, Y.
    Durst, F.
    INTERNATIONAL JOURNAL OF SPRAY AND COMBUSTION DYNAMICS, 2016, 8 (01) : 53 - 64
  • [42] A HIGH-POWER MAGNETIC PULSE-GENERATOR
    VAKHRUSHIN, YP
    TKHOREV, PV
    ERMEL, VE
    YAKOVLEV, YN
    INSTRUMENTS AND EXPERIMENTAL TECHNIQUES, 1992, 35 (02) : 289 - 291
  • [43] Low-energy electron generator for wafer charge neutralization
    Stratoti, Greg
    Ficarra, Larry
    Cummings, James
    Ewing, Peter
    Carroll, James
    Sinclair, Frank
    Ito, Hiro
    2016 21ST INTERNATIONAL CONFERENCE ON ION IMPLANTATION TECHNOLOGY (IIT), 2016,
  • [44] Application of an inductive energy storage pulsed-power generator with POS for a laser system
    Kamatani, M
    Ihara, S
    Satoh, S
    Yamabe, C
    ADVANCED HIGH-POWER LASERS, 2000, 3889 : 793 - 800
  • [45] INFLUENCE OF MAGNETIC AND ELECTRIC INTERFERENCE FIELDS ON ENERGY ANALYSIS OF LOW-ENERGY ELECTRONS
    MARTIN, H
    BAUMGARTNER, W
    HELVETICA PHYSICA ACTA, 1979, 52 (01): : 61 - 63
  • [46] THERMAL BALANCE FOR WELDING WITH PULSED LOW POWER ARCS
    ESIBYAN, EM
    SHNAIDER, BI
    AUTOMATIC WELDING USSR, 1967, 20 (04): : 16 - &
  • [47] Low-energy π NN system
    Baru, Vadim
    19TH INTERNATIONAL IUPAP CONFERENCE ON FEW-BODY PROBLEMS IN PHYSICS, 2009, 3
  • [48] Energy efficiency of corona discharge reactor driven by inductive energy storage system pulsed power generator
    Takaki, K.
    Kanesawa, K.
    Mukaigawa, S.
    Fujiwara, T.
    Go, T.
    IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2007, 14 (04) : 834 - 845
  • [49] Design of failures monitoring system in pulsed gas melted arc welding power source
    Li, Fang
    Hua, Xueming
    Wu, Yixiong
    Hanjie Xuebao/Transactions of the China Welding Institution, 2012, 33 (11): : 101 - 104
  • [50] A LOW-ENERGY MAGNETIC PION SPECTROMETER
    SIKES, S
    STOLER, P
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH, 1982, 200 (2-3): : 281 - 283