Progress in acoustic measurements and geoacoustic applications

Lin Fa, Huiting Yang, Yuxiao Fa, Shuangshuang Meng, Jurong Bai, Yandong Zhang, Xiangrong Fang, Xiao Zou, Xinhao Cui, Yanli Wang, Meishan Zhao
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引用次数: 0

Abstract

Geoacoustic exploration is a rapidly evolving field investigating underground rock formations and sediment environments through acoustic waves. In this paper, we present a review of recent research progress, focusing on newly discovered physical phenomena, such as the reflection and refraction of acoustic waves at the interface between anisotropic rocks and between liquid and solid, the characteristics of electric-acoustic (and acoustic-electric) conversion of piezoelectric transducers, the physical mechanism of acoustic wave propagation in viscous media, and the generation of intrinsic noise. We developed new physical models, introduced a parallel transmission network describing piezoelectric transducers for electric-acoustic (and acoustic-electric) energy transfer, and derived new formulations and algorithms associated with the latest model. We will discuss the potential of abnormal incidence angle, acoustic attenuation, and acoustic Goos-Hänchen effect and propose a method of inversion of formation reflection coefficient using logging and seismic data acquired from anisotropic rocks with dip angle. We will also discuss the physical mechanism and potential applications of the intrinsic noise generated inside viscous solid media. Finally, we introduce a parallel/series lumped vibrational transmission network, explain the acoustic measurement process, and discuss applications of the Kaiser effect in petroleum engineering.

声学测量和地质声学应用方面的进展
地质声学勘探是一个通过声波研究地下岩层和沉积环境的快速发展领域。在本文中,我们回顾了近期的研究进展,重点关注新发现的物理现象,如声波在各向异性岩石之间以及液体和固体之间界面的反射和折射、压电换能器的电声(和声电)转换特性、声波在粘性介质中传播的物理机制以及本征噪声的产生。我们开发了新的物理模型,引入了描述压电换能器电-声(和声-电)能量转移的并行传输网络,并推导出与最新模型相关的新公式和算法。我们将讨论异常入射角、声学衰减和声学 Goos-Hänchen 效应的潜力,并提出一种利用从各向异性岩石获取的带有倾角的测井和地震数据反演地层反射系数的方法。我们还将讨论粘性固体介质内部产生的本征噪声的物理机制和潜在应用。最后,我们将介绍并联/串联块状振动传输网络,解释声学测量过程,并讨论凯撒效应在石油工程中的应用。
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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CiteScore
8.20
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0.00%
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