
Mapped Vector Basis Functions for Electromagnetic Integral Equations
Andrew F. Peterson(Author)
Morgan & Claypool Publishers
Published on 28. June 1905
Book
Paperback/Softback
124 pages
978-1-59829-012-7 (ISBN)
Description
The method-of-moments solution of the electric field and magnetic field integral equations (EFIE and MFIE) is extended to conducting objects modeled with curved cells. These techniques are important for electromagnetic scattering, antenna, radar signature, and wireless communication applications. Vector basis functions of the divergence-conforming and curl-conforming types are explained, and specific interpolatory and hierarchical basis functions are reviewed. Procedures for mapping these basis functions from a reference domain to a curved cell, while preserving the desired continuity properties on curved cells, are discussed in detail. For illustration, results are presented for examples that employ divergence-conforming basis functions with the EFIE and curl-conforming basis functions with the MFIE. The intended audience includes electromagnetic engineers with some previous familiarity with numerical techniques.
More details
Series
Language
English
Place of publication
San Rafael
United States
Target group
Professional and scholarly
Dimensions
Height: 235 mm
Width: 187 mm
ISBN-13
978-1-59829-012-7 (9781598290127)
Copyright in bibliographic data and cover images is held by Nielsen Book Services Limited or by the publishers or by their respective licensors: all rights reserved.
Schweitzer Classification
Content
- Introduction
- The Surface Model
- Divergence-Conforming Basis Functions
- Curl-Conforming Basis Functions
- Transforming Vector Basis Functions to Curved Cells
- Use of Divergence-conforming Basis Functions with the Electric Field Integral Equation
- Use of Curl-conforming Bases with the Magnetic Field Integral Equation
- The Surface Model
- Divergence-Conforming Basis Functions
- Curl-Conforming Basis Functions
- Transforming Vector Basis Functions to Curved Cells
- Use of Divergence-conforming Basis Functions with the Electric Field Integral Equation
- Use of Curl-conforming Bases with the Magnetic Field Integral Equation