## Abstract In this letter, the matching‐on‐in‐order time‐domain volume‐surface integral equation method is used to analyze transient electromagnetic scattering from objects comprising both conductor and dielectric material. SWG and RWG basis functions are used as the spatial basis functions in die
Analysis of transient electromagnetic scattering from dielectric objects using a combined-field integral equation
✍ Scribed by Baek Ho Jung; Tapan Kumar Sarkar; Young-seek Chung; Zhong Ji; Magdalena Salazar-Palma
- Publisher
- John Wiley and Sons
- Year
- 2004
- Tongue
- English
- Weight
- 771 KB
- Volume
- 40
- Category
- Article
- ISSN
- 0895-2477
No coin nor oath required. For personal study only.
✦ Synopsis
Abstract
In this paper, we analyze the transient electromagnetic response from three‐dimensional (3D) dielectric bodies using a time‐domain combined‐field integral equation. The solution method in this paper is based on the method of moments (MoM), which involves separate spatial and temporal testing procedures. Triangular‐patch basis functions are used for spatial expansion and testing functions for arbitrarily shaped 3D dielectric structures. The time‐domain unknown coefficients of the equivalent electric and magnetic currents are approximated by a set of orthonormal basis functions derived from the Laguerre polynomials and exponential functions. These functions are also used as temporal testing. In addition to use of the Laguerre polynomials as expansion functions for the transient portion of the response, two new source vectors related to the equivalent currents enables one to handle the time derivative terms of the vector potential in the integral equation in an analytic fashion. Numerical results computed by the proposed method are presented and compared. © 2004 Wiley Periodicals, Inc. Microwave Opt Technol Lett 40: 476–481, 2004; Published online in Wiley InterScience (www.interscience.wiley.com). DOI 10.1002/mop.20009
📜 SIMILAR VOLUMES
The standard hybrid finite-element boundary-integral ( ) FE᎐BI technique has been extended to deal with the problem of electromagnetic scattering from buried objects. The presence of the ground᎐air interface is taken into account by using the half-space Green's function, thus reducing the number of
## Abstract In this paper, we present an analysis of electromagnetic scattering from arbitrarily shaped three‐dimensional (3D) conducting objects coated with dielectric materials. The integral equation treated here is the combined field integral equation (CFIE). The objective of this paper is to il
## w x Figure Return loss simulated and measured in 17 for Figure far, the numerical applications of the methodology have relied on a direct LU factorization of the resulting matrix equation at a properly defined complex frequency s . Thus, 0 the GT᎐PML implementation is more attractive since it
## Abstract In this article, the multilevel UV algorithm is utilized to reduce both the memory requirement and CPU time in the time‐domain combined field integral equation (TD‐CFIE) method to analyze transient electromagnetic scattering from conducting structures.The UV method is kernel‐independent
## Abstract A time‐domain volume integral equation (TDVIE) solved by the marching‐on‐in‐degree (MOD) scheme is presented for the analysis of transient electromagentic scattering from a three‐dimensional inhomogeneous dielectric object of arbitrary shape with conduction loss.The volume of the object