Improved 3-D boundary charge method for high-accuracy electric field calculation

被引:10
|
作者
Murata, H
Ohye, T
Shimoyama, H
机构
来源
CHARGED PARTICLE OPTICS III | 1997年 / 3155卷
关键词
boundary charge method; surface charge method; 3-D field calculation; 3-D potential calculation; numerical integration; computation time; potential coefficient; field coefficient; charge density;
D O I
10.1117/12.279392
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
In this paper we propose an improved 3-D Boundary Charge Method for high accuracy calculation of the electric field distribution, where differentiation of the coefficient matrix element (= the potential coefficient) with respect to each coordinate component is needed. The differentiated potential coefficient, which is called the field coefficient, is expressed as a double integral. We have found that the first integral of the field coefficient can be done analytically in much the same ways as that of the potential coefficient, thereby greatly improving the computation time of the electric field distribution without any loss of accuracy. As a practical application of the method to field analysis, we have treated the misaligned diode system of a field emission gun.
引用
收藏
页码:113 / 124
页数:12
相关论文
共 50 条
  • [31] An improved discrete transfer method for 3-D surface radiation calculation
    Liu, J
    Zhang, SJ
    Chen, YS
    [J]. NUMERICAL HEAT TRANSFER PART B-FUNDAMENTALS, 2002, 42 (03) : 203 - 214
  • [32] Generalized charge simulation method for the calculation of the electric field in high voltage substations
    Rankovic, Aleksandar
    Savic, Milan S.
    [J]. ELECTRICAL ENGINEERING, 2010, 92 (02) : 69 - 77
  • [33] High-accuracy 3-D modeling of cultural heritage: The digitizing of Donatello's "Maddalena"
    Guidi, G
    Beraldin, JA
    Atzeni, C
    [J]. IEEE TRANSACTIONS ON IMAGE PROCESSING, 2004, 13 (03) : 368 - 378
  • [34] On the accuracy of a 3-D infinite element for open boundary electromagnetic field analysis
    Gratkowski, S.
    Ziolkowski, M.
    [J]. Archiv fur Elektrotechnik Berlin, 1994, 77 (02): : 77 - 83
  • [35] Calculation of 3-D Electric Field Intensity in presence of Conductors with Floating Potentials
    Dong, Xuanchang
    Qu, Fengrui
    Li, Yanfei
    Wu, Zhikun
    Chen, Zeming
    Huang, Guoquan
    Liu, Gang
    [J]. 2018 12TH INTERNATIONAL CONFERENCE ON THE PROPERTIES AND APPLICATIONS OF DIELECTRIC MATERIALS (ICPADM 2018), 2018, : 351 - 354
  • [36] An Iterative High-Accuracy ADI Method for the 3D Parabolic Equation
    Wu, Xiaoping
    Li, Zihao
    Liang, Zhixi
    Long, Yunliang
    [J]. INTERNATIONAL JOURNAL OF ANTENNAS AND PROPAGATION, 2023, 2023
  • [37] 3-D MAGNETOSTATIC FIELD CALCULATION USING THE MAGNETIC VECTOR POTENTIAL AND BOUNDARY INTEGRAL-EQUATION METHOD
    MORISUE, T
    FUKUMI, M
    [J]. IEEE TRANSACTIONS ON MAGNETICS, 1987, 23 (05) : 3311 - 3313
  • [38] 3-D Electric Field Computation with Charge Simulation Method around Buildings near HV Transmission Lines
    Wang, Donglai
    Lu, Tiebing
    Li, Qinyuan
    Chen, Bo
    Li, Xuebao
    [J]. 2016 IEEE CONFERENCE ON ELECTROMAGNETIC FIELD COMPUTATION (CEFC), 2016,
  • [39] High-accuracy characterization of the edge radial electric field at ASDEX Upgrade
    Viezzer, E.
    Puetterich, T.
    Conway, G. D.
    Dux, R.
    Happel, T.
    Fuchs, J. C.
    McDermott, R. M.
    Ryter, F.
    Sieglin, B.
    Suttrop, W.
    Willensdorfer, M.
    Wolfrum, E.
    [J]. NUCLEAR FUSION, 2013, 53 (05)
  • [40] Predistorting Projected Fringes for High-Accuracy 3-D Phase Mapping in Fringe Projection Profilometry
    Wang, Jian
    Zhang, Zonghua
    Leach, Richard K.
    Lu, Wenlong
    Xu, Jianfeng
    [J]. IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2021, 70