Inhomogeneous Helmholtz equations in wave guides – existence and uniqueness results with energy methods

IF 1.1 4区 数学 Q1 MATHEMATICS, APPLIED European Journal of Applied Mathematics Pub Date : 2022-03-30 DOI:10.1017/s0956792522000080
B. Schweizer
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引用次数: 0

Abstract

The Helmholtz equation $-\nabla\cdot (a\nabla u) - \omega^2 u = f$ is considered in an unbounded wave guide $\Omega := \mathbb{R} \times S \subset \mathbb{R}^d$ , $S\subset \mathbb{R}^{d-1}$ a bounded domain. The coefficient a is strictly elliptic and either periodic in the unbounded direction $x_1 \in \mathbb{R}$ or periodic outside a compact subset; in the latter case, two different periodic media can be used in the two unbounded directions. For non-singular frequencies $\omega$ , we show the existence of a solution u. While previous proofs of such results were based on analyticity arguments within operator theory, here, only energy methods are used.
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波导中的非齐次亥姆霍兹方程。能量法的存在性和唯一性结果
Helmholtz方程$-\nabla\cdot(a\nablau)-\omega^2 u=f$在无界波导$\omega:=\mathbb{R}\times S\subet \mathbb{R}^d$中被认为是有界域。系数a是严格椭圆的,在无界方向$x_1\in\mathbb{R}$上是周期性的,或者在紧子集外是周期性;在后一种情况下,可以在两个无界方向上使用两种不同的周期性介质。对于非奇异频率$\omega$,我们证明了解u的存在。虽然以前对这些结果的证明是基于算子理论中的分析性论点,但这里只使用能量方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.70
自引率
0.00%
发文量
31
审稿时长
>12 weeks
期刊介绍: Since 2008 EJAM surveys have been expanded to cover Applied and Industrial Mathematics. Coverage of the journal has been strengthened in probabilistic applications, while still focusing on those areas of applied mathematics inspired by real-world applications, and at the same time fostering the development of theoretical methods with a broad range of applicability. Survey papers contain reviews of emerging areas of mathematics, either in core areas or with relevance to users in industry and other disciplines. Research papers may be in any area of applied mathematics, with special emphasis on new mathematical ideas, relevant to modelling and analysis in modern science and technology, and the development of interesting mathematical methods of wide applicability.
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