利用参数声阵列对气泡液体中差频分量光束的穿透性和指向性进行了数值研究

IF 2.1 3区 物理与天体物理 Q2 ACOUSTICS
María Teresa Tejedor-Sastre , Christian Vanhille
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引用次数: 0

摘要

超声波在不同介质中的穿透性和指向性在工程和医学应用(成像、无损检测、声化学等)中具有重要意义。利用液体的非线性特性,可以在参数化天线框架中从源处的多个超声信号中产生具有特定特征的低频分量。气泡液体是一种分散的液体,其中少量的微小气泡导致介质的非线性参数在一定频率范围内增大。参数天线应用于这些巨大的非线性介质中,在源处产生强度相对较小的低频分量。低频分量(从两个主信号中获得的差频分量)在气泡液体中传播过程中的演变是未知的。因此,分析其特性,以确定该分量是否可以从其自身频率和主频率的质量中受益,就指向性和穿透性而言,这是很有趣的。必须指出的是,文献中没有对气泡液体的研究,只有对均匀介质的研究。这项工作的目的就是填补这一空白。为此,本文使用了先前开发的几个数值模型来分析从源处的两个超声信号发射的参数天线在一维和二维域中获得的差频分量。这些模型使我们能够观察到这个频率分量的行为。还定义了测量光束方向性的角度。我们的结果显示了一个在文献中很难发现的点:与气泡液体中直接从源处激发的同频率信号和均匀流体中的参数声阵列相比,与差频分量相关的二次波束对气泡液体的高指向性和大穿透性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A numerical study on the penetrability and directivity of the difference-frequency component beam in bubbly liquids obtained via parametric acoustic array
The penetrability and directivity of ultrasound in different media is of interest in engineering and medical applications (imaging, nondestructive testing, sonochemistry, among others). The nonlinearity of a liquid can be used in the parametric antenna framework to generate low-frequency components with particular features from several ultrasonic signals at the source. Bubbly liquids are dispersive liquids in which a small amount of tiny gas bubbles leads to the increase of the nonlinear parameter of the media over certain frequency ranges. Parametric antenna applied to these huge nonlinear media give rise to low-frequency components with relatively small intensity at the source. The evolution of a low-frequency component (difference-frequency component obtained from two primary signals) during its propagation in a bubbly liquid is somehow unknown. It is thus interesting to analyze its characteristics to establish whether this component can benefit from the quality of its own frequency and from the primary frequencies, in terms of directivity and penetrability into the medium. It must be noted that no such study in bubbly liquids exists in the literature, but only for homogeneous media. The aim of this work is to fill this gap. To this end, several numerical models developed previously are used here to analyze the difference-frequency component obtained from a parametric antenna emitting from two ultrasonic signals at the source in one and two-dimensional domains. These models allow us to observe the behavior of this frequency component. An angle that measures the directivity of a beam is also defined. Our results show a point hardly found in the literature: the high directivity and the huge penetrability of the secondary beam associated to the difference-frequency component into the bubbly liquid, compared to the same frequency signal excited directly from the source in the bubbly liquid and to the parametric acoustic array in homogeneous fluids.
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来源期刊
Wave Motion
Wave Motion 物理-力学
CiteScore
4.10
自引率
8.30%
发文量
118
审稿时长
3 months
期刊介绍: Wave Motion is devoted to the cross fertilization of ideas, and to stimulating interaction between workers in various research areas in which wave propagation phenomena play a dominant role. The description and analysis of wave propagation phenomena provides a unifying thread connecting diverse areas of engineering and the physical sciences such as acoustics, optics, geophysics, seismology, electromagnetic theory, solid and fluid mechanics. The journal publishes papers on analytical, numerical and experimental methods. Papers that address fundamentally new topics in wave phenomena or develop wave propagation methods for solving direct and inverse problems are of interest to the journal.
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