TY - JOUR
T1 - Surface Charge Analysis in Eddy Current Problems
AU - Fujishima, Yasushi
AU - Wakao, Shinji
PY - 2002/9/1
Y1 - 2002/9/1
N2 - To estimate characteristics of electric machines that have conductors with complex form, it is effective to analyze the surface charge concerned with eddy current phenomena. However, the eddy current field is generally treated as quasi-static field in which the displacement current is neglected and the electric field is not defined in the non-conductive region in the calculating process. Therefore, when we adopt only the A-Ø FE method as a field analysis method, it is difficult to directly calculate the surface charge at the interface between conductive and non-conductive regions. In this paper, with this background, we propose a novel analysis method of the surface charge based both on the A-Ø formulation of 3D edge FE method and on the integral equation. This approach enables us to precisely calculate the surface charge. Some numerical results, which demonstrate the validity of the proposed method, are also presented, e.g., the surface charge analysis of linear induction motors for evaluating the relationships among the surface charge, eddy current, and conductor shape.
AB - To estimate characteristics of electric machines that have conductors with complex form, it is effective to analyze the surface charge concerned with eddy current phenomena. However, the eddy current field is generally treated as quasi-static field in which the displacement current is neglected and the electric field is not defined in the non-conductive region in the calculating process. Therefore, when we adopt only the A-Ø FE method as a field analysis method, it is difficult to directly calculate the surface charge at the interface between conductive and non-conductive regions. In this paper, with this background, we propose a novel analysis method of the surface charge based both on the A-Ø formulation of 3D edge FE method and on the integral equation. This approach enables us to precisely calculate the surface charge. Some numerical results, which demonstrate the validity of the proposed method, are also presented, e.g., the surface charge analysis of linear induction motors for evaluating the relationships among the surface charge, eddy current, and conductor shape.
KW - coulomb gauge
KW - eddy current
KW - edge finite element method
KW - electric scalar potential
KW - surface charge
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U2 - 10.1541/ieejias.122.633
DO - 10.1541/ieejias.122.633
M3 - Article
AN - SCOPUS:85024741975
SN - 0913-6339
VL - 122
SP - 633
EP - 639
JO - ieej transactions on industry applications
JF - ieej transactions on industry applications
IS - 6
ER -