Modeling of thin curved sheets with the curvilinear FDTD

被引:10
|
作者
Navarro, EA [1 ]
Segura, J [1 ]
Soriano, A [1 ]
Such, V [1 ]
机构
[1] Univ Valencia, Dept Fis Aplicada, E-46100 Valencia, Spain
关键词
finite-difference; time-domain (FDTD) curvilinear/nonorthogonal; randomes; thin dielectric sheets;
D O I
10.1109/TAP.2003.822416
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The finite-difference time-domain method in general curvilinear coordinates (FDTD-GCC), or nonorthogonal FDTD, permits the analysis of arbitrary, curved structures with the use of a conformal mesh. The analysis of near fields in the proximity of a thin curved dielectric sheet is a difficult task; then, ray tracing techniques and spectral numerical techniques are usually employed in the analysis of radomes. In this paper, the FDTD-GCC is modified to account for the analysis of thin curved dielectric sheets. The contravariant electric field normal to the sheet is split in two subcomponents, and new nodes are introduced where the thin sheet is located. New updating equations are inserted in the calculation of contravariant field components. The utility of the proposed technique is demonstrated in the analysis of two cylindrical radomes, the first having four not centered dipoles and the second with a centered dipole. The thickness of the radomes was 0.035-0.026 wavelengths at the central operating frequency.
引用
收藏
页码:342 / 346
页数:5
相关论文
共 50 条
  • [41] Asymptotic modeling of thin curved martensitic films
    Le Dret, H
    Zorgati, H
    ASYMPTOTIC ANALYSIS, 2006, 48 (1-2) : 141 - 171
  • [42] Cohesive zone modeling of thin aluminium sheets
    Vishnu, O. S.
    Gattu, Mahendra
    MATERIALS TODAY-PROCEEDINGS, 2020, 33 : 5672 - 5677
  • [43] Modeling thin metallic sheets for transient problems
    Deeley, EM
    Simkin, J
    IEEE TRANSACTIONS ON MAGNETICS, 2000, 36 (04) : 1201 - 1204
  • [44] Modeling thin metallic sheets for transient problems
    King's Coll, London, United Kingdom
    IEEE Transactions on Magnetics, 2000, 36 (4 I) : 1201 - 1204
  • [45] A new FDTD subgridding boundary condition for FDTD subcell lossy thin-layer modeling
    Cabello, M. R.
    Angulo, L. D.
    Bretones, A. R.
    Martin, R. G.
    Garcia, S. G.
    Alvarez, J.
    2016 IEEE ANTENNAS AND PROPAGATION SOCIETY INTERNATIONAL SYMPOSIUM, 2016, : 2031 - 2032
  • [46] Stable modeling of arbitrarily oriented thin slots in the FDTD method
    Edelvik, F
    Weiland, T
    IEEE TRANSACTIONS ON ELECTROMAGNETIC COMPATIBILITY, 2005, 47 (03) : 440 - 446
  • [47] Accurate modeling of thin-wire antennas in the FDTD method
    Douglas, M
    Okoniewski, M
    Stuchly, MA
    MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 1999, 21 (04) : 261 - 265
  • [48] Efficient and Accurate Modeling of Curved Dispersive Objects Using FDTD With Special Anisotropic Treatment
    Railton, Chris J.
    IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2014, 62 (05) : 2688 - 2694
  • [49] Light manipulation with flat and conformal inhomogeneous dispersive impedance sheets: an efficient FDTD modeling
    Jafar-Zanjani, Samad
    Cheng, Jierong
    Mosallaei, Hossein
    APPLIED OPTICS, 2016, 55 (11) : 2967 - 2975
  • [50] Surface Plasmon Polariton Propagation Modeling for Graphene Parallel Pair Sheets Using FDTD
    Rana, Masud
    Hossain, Biplob
    Islam, Rabiul
    Guo, You Guang
    2015 IEEE INTERNATIONAL CONFERENCE ON APPLIED SUPERCONDUCTIVITY AND ELECTROMAGNETIC DEVICES (ASEMD), 2015, : 179 - 180