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Volume 28, Issue 3
The Study of Electromagnetic Scattering by a Non-Perfectly Conductor in Chiral Media by Potential Theory

Tianling Gao & Qiang Liu

Commun. Math. Res., 28 (2012), pp. 235-242.

Published online: 2021-05

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  • Abstract

This paper is concerned with the electromagnetic scattering by a non-perfectly conductor obstacle in chiral environment. A two-dimensional mathematical model is established. The existence and uniqueness of the problem are discussed by potential theory.

  • AMS Subject Headings

65N06, 35Q60

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COPYRIGHT: © Global Science Press

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@Article{CMR-28-235, author = {Gao , Tianling and Liu , Qiang}, title = {The Study of Electromagnetic Scattering by a Non-Perfectly Conductor in Chiral Media by Potential Theory}, journal = {Communications in Mathematical Research }, year = {2021}, volume = {28}, number = {3}, pages = {235--242}, abstract = {

This paper is concerned with the electromagnetic scattering by a non-perfectly conductor obstacle in chiral environment. A two-dimensional mathematical model is established. The existence and uniqueness of the problem are discussed by potential theory.

}, issn = {2707-8523}, doi = {https://doi.org/}, url = {http://global-sci.org/intro/article_detail/cmr/19044.html} }
TY - JOUR T1 - The Study of Electromagnetic Scattering by a Non-Perfectly Conductor in Chiral Media by Potential Theory AU - Gao , Tianling AU - Liu , Qiang JO - Communications in Mathematical Research VL - 3 SP - 235 EP - 242 PY - 2021 DA - 2021/05 SN - 28 DO - http://doi.org/ UR - https://global-sci.org/intro/article_detail/cmr/19044.html KW - chiral medium, Maxwell's equation, Drude-Born-Fedorov equation, potential theory. AB -

This paper is concerned with the electromagnetic scattering by a non-perfectly conductor obstacle in chiral environment. A two-dimensional mathematical model is established. The existence and uniqueness of the problem are discussed by potential theory.

Tianling Gao & Qiang Liu. (2021). The Study of Electromagnetic Scattering by a Non-Perfectly Conductor in Chiral Media by Potential Theory. Communications in Mathematical Research . 28 (3). 235-242. doi:
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