The Braking Torque Analysis of Eddy Current Brake with the Use of Coulomb′s law and the Method of Image

쿨롬 법칙과 영상법을 이용한 와전류 브레이크의 제동토크 해석

  • 이갑진 (광주과학기술원 기전공학과) ;
  • 박기환 (광주과학기술원 기전공학과)
  • Published : 2001.09.01

Abstract

Since the eddy current problem usually depends on the geometry of the moving conductive sheet and the shape of the pole projection area, there is no general method to find out its analytical solution. The analysis of the eddy current in a rotating disk is performed in the case of time-invariant field to find its analytical solution. As a method to solve the eddy current problem, the concept of the Coulomb charge and image method are proposed with the consideration of the boundary condition. Firstly, the line charge is obtained from the volume charge generated in the rotating disk and Coulomb's law is applied. Secondly, the finite disk radius is considered by introducing an imaginary eddy current to satisfy the boundary condition that the radial component of the eddy current is zero at the edge of the relating disk. Thirdly, the braking torque is calculated by applying Lorentz force law. Finally, the computed braking torque is compared with the measured one As a result, it can be said that the proposed model presents fairly accurate results in a low angular velocity range although a large error is observed as the angular velocity of the disk increases.

Keywords

References

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