功能梯度预应力正交各向异性基板中边界对瑞利波色散的影响

IF 0.9 4区 工程技术 Q4 MECHANICS
Y. B. Darhas, N. Pradhan, S. Saha, A. Senapati, S. Pramanik
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引用次数: 0

摘要

本文研究了瑞利波在预应力梯度正交各向异性基板中的传播特性。考虑了两种类型的材料级配,指数级和对数级。在无应力和刚性两种边界条件下,分析了这些级配轮廓的影响。推导出的色散关系考虑了梯度参数、初始应力和密度变化的影响。对相速度和衰减系数进行了全面的数值分析。结果表明,两种梯度类型对波的色散和衰减行为都有显著影响。其中,指数梯度在中低波数下引起的变化更强,而对数梯度在低波数和高波数时对衰减和相速度的影响更大。发现初始应力参数在波数上降低相速度,而密度变化随边界类型的不同表现出相反的行为。这些发现为材料设计、地震分析和无损检测技术提供了重要的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Influence of Boundaries on the Dispersion of Rayleigh Waves in a Functionally Graded Pre-Stressed Orthotropic Substrate

Influence of Boundaries on the Dispersion of Rayleigh Waves in a Functionally Graded Pre-Stressed Orthotropic Substrate

The current research investigates the propagation behavior of Rayleigh-type waves in a prestressed functionally graded orthotropic substrate. Two types of material gradation, exponential and logarithmic, are considered. The influence of these gradation profiles is analyzed under two boundary conditions: stress-free and rigid. The derived dispersion relations account for the effects of gradient parameters, initial stress, and density variations. A comprehensive numerical analysis is performed to evaluate the phase velocity and attenuation coefficient. The results reveal that both gradient types significantly affect the wave dispersion and attenuation behavior. Specifically, the exponential gradient induces stronger changes at lower and moderate wave numbers, while the logarithmic gradient affects attenuation more at lower wave numbers and phase velocity at higher wave numbers. The initial stress parameter is found to decrease phase velocity across wave numbers, while density variation shows contrasting behavior depending on the boundary type. The findings provide critical insights into material design, seismic analysis, and non-destructive testing techniques.

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来源期刊
Mechanics of Solids
Mechanics of Solids 医学-力学
CiteScore
1.20
自引率
42.90%
发文量
112
审稿时长
6-12 weeks
期刊介绍: Mechanics of Solids publishes articles in the general areas of dynamics of particles and rigid bodies and the mechanics of deformable solids. The journal has a goal of being a comprehensive record of up-to-the-minute research results. The journal coverage is vibration of discrete and continuous systems; stability and optimization of mechanical systems; automatic control theory; dynamics of multiple body systems; elasticity, viscoelasticity and plasticity; mechanics of composite materials; theory of structures and structural stability; wave propagation and impact of solids; fracture mechanics; micromechanics of solids; mechanics of granular and geological materials; structure-fluid interaction; mechanical behavior of materials; gyroscopes and navigation systems; and nanomechanics. Most of the articles in the journal are theoretical and analytical. They present a blend of basic mechanics theory with analysis of contemporary technological problems.
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