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Simulation study of a chaotic cavity transducer based virtual phased array used for focusing in the bulk of a solid material

机译:基于混沌腔换能器的虚拟相控阵聚焦固体材料的仿真研究

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In acoustic and ultrasonic non-destructive testing techniques, it is sometimes beneficial to concentrate sound energy at a chosen location in space and at a specific instance in time, for example to improve the signal-to-noise ratio or activate the nonlinearity of damage features. Time Reversal (TR) techniques, taking advantage of the reversible character of the wave equation, are particularly suited to focus ultrasonic waves in time and space. The characteristics of the energy focusing in solid media using principles of time reversed acoustics are highly influenced by the nature and dimensions of the medium, the number of transducers and the length of the received signals. Usually, a large number of transducers enclosing the domain of interest is needed to improve the quality of the focusing. However, in the case of highly reverberant media, the number of transducers can be reduced to only one (single-channel TR). For focusing in a non-reverberant medium, which is impossible when using only one source, an adaptation of the single-channel reciprocal TR procedure has been recently suggested by means of a Chaotic Cavity Transducer (CCT), a single element transducer glued on a cavity of chaotic shape. In this paper, a CCT is used to focus elastic energy, at different times, in different points along a predefined line on the upper surface of a thick solid sample. Doing so, all focusing points can act as a virtual phased array transducer, allowing to focus in any point along the depth direction of the sample. This is impossible using conventional reciprocal TR, as you need to have access to all points in the bulk of the material for detecting signals to be used in the TR process. To asses and provide a better understanding of this concept, a numerical study has been developed, allowing to verify the basic concepts of the virtual phased array and to illustrate multi-component time reversal focusing in the bulk of a solid material. (C) 2016 Elsevier B.V. All rights reserved.
机译:在声学和超声波无损检测技术中,有时有益的是将声能集中在空间中选定的位置,并在特定的时间点进行,例如提高信噪比或激活损坏特征的非线性。 。时间反转(TR)技术利用了波动方程的可逆特性,特别适合于将超声波聚焦在时间和空间上。使用时间反向声学原理在固体介质中聚焦的能量的特性在很大程度上受介质的性质和尺寸,换能器的数量以及接收信号的长度的影响。通常,需要大量的换能器将感兴趣的区域包围起来,以提高聚焦质量。但是,在高混响媒体的情况下,换能器的数量可以减少到一个(单通道TR)。为了聚焦在非混响介质上(这仅在使用一个光源时是不可能的),最近有人建议通过混沌腔换能器(CCT)来适应单通道倒数TR程序,该传感器粘在一个形状混乱的空腔。在本文中,CCT用于将弹性能量在不同时间沿着厚固体样品上表面上预定线的不同点聚焦。这样做,所有聚焦点都可以充当虚拟相控阵换能器,从而可以聚焦在沿样品深度方向的任何点上。使用常规的双向TR不可能做到这一点,因为您需要访问材料大部分中的所有点以检测TR过程中使用的信号。为了评估和更好地理解此概念,已进行了一项数值研究,可以验证虚拟相控阵的基本概念,并说明在固体材料主体中的多分量时间反转。 (C)2016 Elsevier B.V.保留所有权利。

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