翻訳と辞書
Words near each other
・ Computational biology
・ Computational Biology and Chemistry
・ Computational chemical methods in solid-state physics
・ Computational chemistry
・ Computational Chemistry Grid
・ Computational Chemistry List
・ Computational cognition
・ Computational complexity
・ Computational complexity of mathematical operations
・ Computational complexity theory
・ Computational creativity
・ Computational criminology
・ Computational cybernetics
・ Computational Diffie–Hellman assumption
・ Computational economics
Computational electromagnetics
・ Computational engineering
・ Computational epidemiology
・ Computational epigenetics
・ Computational epistemology
・ Computational finance
・ Computational fluid dynamics
・ Computational Fluid Dynamics for Phase Change Materials
・ Computational gene
・ Computational genomics
・ Computational geometry
・ Computational Geometry (journal)
・ Computational geophysics
・ Computational group theory
・ Computational hardness assumption


Dictionary Lists
翻訳と辞書 辞書検索 [ 開発暫定版 ]
スポンサード リンク

Computational electromagnetics : ウィキペディア英語版
Computational electromagnetics
Computational electromagnetics, computational electrodynamics or electromagnetic modeling is the process of modeling the interaction of electromagnetic fields with physical objects and the environment.
It typically involves using computationally efficient approximations to Maxwell's equations and is used to calculate antenna performance, electromagnetic compatibility, radar cross section and electromagnetic wave propagation when not in free space.
A specific part of computational electromagnetics deals with electromagnetic radiation scattered and absorbed by small particles.
==Background==

Several real-world electromagnetic problems like electromagnetic scattering, electromagnetic radiation, modeling of waveguides etc., are
not analytically calculable, for the multitude of irregular geometries found in actual devices. Computational numerical techniques can overcome the inability to derive closed form solutions of Maxwell's equations under various constitutive relations of media, and boundary conditions. This makes ''computational electromagnetics'' (CEM) important to the design, and modeling of antenna, radar, satellite and other communication systems, nanophotonic devices and high speed silicon electronics, medical imaging, cell-phone antenna design, among other applications.
CEM typically solves the problem of computing the ''E'' (Electric), and ''H'' (Magnetic) fields across the problem domain (e.g., to calculate antenna radiation pattern for an arbitrarily shaped antenna structure). Also calculating power flow direction (Poynting vector), a waveguide's normal modes, media-generated wave dispersion, and scattering can be computed from the ''E'' and ''H'' fields. CEM models may or may not assume symmetry, simplifying real world structures to idealized cylinders, spheres, and other regular geometrical objects. CEM models extensively make use of symmetry, and solve for reduced dimensionality from 3 spatial dimensions to 2D and even 1D.
An eigenvalue problem formulation of CEM allows us to calculate steady state normal modes in a structure. Transient response and impulse field effects are more accurately modeled by CEM in time domain, by FDTD. Curved geometrical objects are treated more accurately as finite elements FEM, or non-orthogonal grids. Beam propagation method (BPM) can solve for the power flow in waveguides. CEM is application specific, even if different techniques converge to the same field and power distributions in the modeled domain.

抄文引用元・出典: フリー百科事典『 ウィキペディア(Wikipedia)
ウィキペディアで「Computational electromagnetics」の詳細全文を読む



スポンサード リンク
翻訳と辞書 : 翻訳のためのインターネットリソース

Copyright(C) kotoba.ne.jp 1997-2016. All Rights Reserved.