内部点源影响下功能分级粘弹性和单斜介质两层结构中的 SH 波

IF 2.9 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Nirakara Pradhan, Santanu Manna, Sapan Kumar Samal, Shalini Saha
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引用次数: 0

摘要

本文研究了sh型波的传播特性,该波起源于一个独特结构的界面,该结构包括一个有限深度的功能梯度粘弹性(FGV)层,覆盖在功能梯度单斜(FGM)半空间上。上部粘弹性层的材料常数表现为双曲梯度性质,而下部单斜半空间的材料常数表现为指数梯度性质。利用傅里叶变换和格林函数方法考虑表面和界面边界条件,导出了sh型波的色散关系。得到的梯度层状结构色散关系揭示了波现象与材料性质之间复杂的相互作用。数值分析说明了不同梯度参数值对色散曲线、相速度、群速度和波数的显著影响。这种认识对地震成像、地质资源勘探和弹性基础设施设计至关重要,从而促进地球物理和工程领域的创新。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
SH wave in two-layered structure of functionally graded viscoelastic and monoclinic media under the influence of an interior point source

This paper investigates the propagation characteristics of SH-type waves originating from a point source situated at the interface of a unique structure comprising a functionally graded viscoelastic (FGV) layer of finite depth overlying a functionally graded monoclinic (FGM) half-space. The upper viscoelastic layer exhibits a hyperbolic gradient property in its material constants, while an exponential gradient property characterizes the lower monoclinic half-space. Employing the Fourier transform and Green’s function method to account for surface and interfacial boundary conditions, a dispersion relation for the SH-type waves is derived. The obtained dispersion relation for the gradient layered structures reveals a complex interplay between wave phenomena and material properties. Numerical analysis is performed to illustrate the theoretical results for various gradient parameter values, demonstrating a significant influence on dispersion curves, phase velocity, group velocity, and wave number. This understanding holds paramount importance for seismic imaging, geological resource exploration, and the design of resilient infrastructure, thereby fostering innovation in geophysics and engineering.

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来源期刊
The European Physical Journal Plus
The European Physical Journal Plus PHYSICS, MULTIDISCIPLINARY-
CiteScore
5.40
自引率
8.80%
发文量
1150
审稿时长
4-8 weeks
期刊介绍: The aims of this peer-reviewed online journal are to distribute and archive all relevant material required to document, assess, validate and reconstruct in detail the body of knowledge in the physical and related sciences. The scope of EPJ Plus encompasses a broad landscape of fields and disciplines in the physical and related sciences - such as covered by the topical EPJ journals and with the explicit addition of geophysics, astrophysics, general relativity and cosmology, mathematical and quantum physics, classical and fluid mechanics, accelerator and medical physics, as well as physics techniques applied to any other topics, including energy, environment and cultural heritage.
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