单参数二阶应变梯度理论下广义波动方程的色散分析

IF 1.9 4区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS
Chaopu Chen, Wenlei Bai, Hong Liu, Zhiyang Wang, Youming Li
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引用次数: 0

摘要

在地震勘探领域,学者们一直致力于建立接近物理现实的波传播模型。高铁地震学研究表明,不同尺度的微观结构相互作用会引发介质的非均质响应,进而影响宏观尺度的力学行为。广义波动方程通过引入位移的高阶导数和与介质微观结构性质相关的特征尺度参数,增强了反映介质非均质性的能力。本文引入了考虑非局部效应的单参数二阶应变梯度理论下的广义波动方程,利用亥姆霍兹分解定理给出了解耦的广义波动方程,并推导了横波和纵波相速度的表达式。在此基础上,结合理论频散分析和数值实验研究了考虑介质中微观结构相互作用的地震波传播频散特性,为实际介质下地震波传播模型的建立和解释提供了新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dispersion Analysis of Generalized Wave Equations Under the Single-Parameter Second-Order Strain Gradient Theory

In the field of seismic exploration, scholars have been working to conduct wave propagation models that are close to physical reality. Researches for high-speed rail seismology show that the microstructural interactions by different scales will trigger the heterogeneous response of the medium, which in turn has an impact on the mechanical behavior of macro-scales. The generalized wave equations enhance the ability to reflect the heterogeneity of the medium by introducing the higher derivative of displacement and the characteristic scale parameters related to the microstructural properties of the medium. In this paper, we introduce the generalized wave equations under the single-parameter second-order strain gradient theory by considering the nonlocal effects, give the decoupled generalized wave equations using the Helmholtz decomposition theorem, and derive the expression of the phase-velocity of the P- and S-wave. Then, we investigate the dispersion characteristics of seismic wave propagation by considering the microstructural interactions in the medium utilizing theoretical dispersion analysis and numerical experiments which can provide a new approach for the establishment and interpretation of wave propagation models under actual medium.

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来源期刊
pure and applied geophysics
pure and applied geophysics 地学-地球化学与地球物理
CiteScore
4.20
自引率
5.00%
发文量
240
审稿时长
9.8 months
期刊介绍: pure and applied geophysics (pageoph), a continuation of the journal "Geofisica pura e applicata", publishes original scientific contributions in the fields of solid Earth, atmospheric and oceanic sciences. Regular and special issues feature thought-provoking reports on active areas of current research and state-of-the-art surveys. Long running journal, founded in 1939 as Geofisica pura e applicata Publishes peer-reviewed original scientific contributions and state-of-the-art surveys in solid earth and atmospheric sciences Features thought-provoking reports on active areas of current research and is a major source for publications on tsunami research Coverage extends to research topics in oceanic sciences See Instructions for Authors on the right hand side.
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