Understanding the behaviour of magnetic field distribution of railgun under transient conditions using finite element method

被引:0
|
作者
Karpagam R. [1 ]
Lydia J. [1 ]
Murugan R. [2 ]
Kumar C.R. [3 ]
机构
[1] Department of Electrical and Electronics Engineering, Easwari Engineering College, Chennai
[2] Department of Electrical and Electronics Engineering, St.Peter's College of Engineering and Technology, Chennai
[3] Department of Electronics and Communication Engineering, Panimalar Engineering College, Chennai
来源
关键词
Ansys; Armature; FEM; Magnetic field; Railgun;
D O I
10.1016/j.measen.2023.100971
中图分类号
学科分类号
摘要
The magnetic field distribution in the rails is a crucial factor in comprehending railgun behaviour. The projectile's rapid movement has a significant impact on the magnetic field. If the dispersion of the magnetic field conclusions regarding the conductors are known suitable methods can be used to sketch the magnetic field distribution. The railgun operates on the premise that a high current flow through the rails and armature will create a strong magnetic field. As a result, before designing magnetic shielding, it is necessary to study the features of the magnetic field distribution. The shape of rail and armature cross section is very essential in rail gun design as it determines the magnetic field distribution over rail and armature. The rail gun geometries with rectangular, convex and concave rail cross-sections are compared and simulated using finite element method (FEM). This method is used to determine the magnetic field distribution over rail and armature by sweeping armature position for different rail cross sections. It is observed that for the different rail/armature shapes like rectangular, convex and concave shapes, the C shaped convex armature possesses strong magnetic fields with minimum current density concentration at the throat and trailing end of the armature. From simulation, it can be shown that the magnetic flux density is a descending function of the central angle. The electromagnetic (EM) rail gun launching mechanism was therefore proven to be compatible with the circular concave armature. © 2023 The Authors
引用
收藏
相关论文
共 50 条
  • [41] Prediction Of Smooth Elbow Behaviour Using Finite Element Method
    Saxena, Sanjeev
    Ramakrishnan, N.
    Chouhan, J. S.
    TRANSACTIONS OF THE INDIAN INSTITUTE OF METALS, 2007, 60 (06) : 553 - 558
  • [42] Electro-Thermal Behaviour Using Finite Volume and Finite Element Method
    Bella, M. A.
    Bailey, C.
    Lu, H.
    2018 19TH INTERNATIONAL CONFERENCE ON THERMAL, MECHANICAL AND MULTI-PHYSICS SIMULATION AND EXPERIMENTS IN MICROELECTRONICS AND MICROSYSTEMS (EUROSIME), 2018,
  • [43] Transient analysis of coaxial magnetic gears using finite element comodeling
    Chau, K. T.
    Zhang, Dong
    Jiang, J. Z.
    Jian, Linni
    JOURNAL OF APPLIED PHYSICS, 2008, 103 (07)
  • [44] The dynamic behaviour of a finite railway under the high-speed multiple moving forces by using finite element method
    Wu, JS
    Shih, PY
    COMMUNICATIONS IN NUMERICAL METHODS IN ENGINEERING, 2000, 16 (12): : 851 - 866
  • [45] Transient Temperature Distribution Analysis at an Orthotropic Metal Bar by Finite Element Method
    Saragi, Elfrida
    2ND INTERNATIONAL CONFERENCE ON ADVANCES IN NUCLEAR SCIENCE AND ENGINEERING - ICANSE 2009, 2010, 1244 : 196 - 203
  • [46] A study of electric field distribution in Benjamin type proportional counter using finite element method
    Lin, Ye
    Yuan, Yonggang
    Fang, Fang
    Tan, Zhaoyi
    APPLIED RADIATION AND ISOTOPES, 2018, 135 : 142 - 146
  • [47] ELECTRIC-FIELD DISTRIBUTION IN HUMAN-BODY USING FINITE-ELEMENT METHOD
    NATARAJAN, R
    SESHADRI, V
    MEDICAL & BIOLOGICAL ENGINEERING, 1976, 14 (05): : 489 - 493
  • [48] Comparative Analysis of Electric Field Distribution on Glass and Ceramic Insulator Using Finite Element Method
    Fahmi, Daniar
    Novario, Lucky Andika
    Negara, I. Made Yulistya
    Wahyudi, R.
    2016 INTERNATIONAL SEMINAR ON INTELLIGENT TECHNOLOGY AND ITS APPLICATIONS (ISITIA): RECENT TRENDS IN INTELLIGENT COMPUTATIONAL TECHNOLOGIES FOR SUSTAINABLE ENERGY, 2016, : 515 - 520
  • [49] Simulation of the potential and electric field distribution on high voltage insulator using the finite element method
    Benguesmia H.
    M’Ziou N.
    Boubakeur A.
    Diagnostyka, 2018, 19 (02): : 41 - 52
  • [50] The Analysis of Magnetic Field Intensity and Induced Current Under Live Working Based on The Finite Element Method
    Luo, Yuanxiang
    Chen, Ruiguo
    Zhu, Yidong
    Cheng, Jingui
    Wei, Meixia
    2015 FIFTH INTERNATIONAL CONFERENCE ON INSTRUMENTATION AND MEASUREMENT, COMPUTER, COMMUNICATION AND CONTROL (IMCCC), 2015, : 192 - 195