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Ultrasonic wave propagation on an inclined solid half-space partially immersed in a liquid.

机译:超声波在部分浸入液体的倾斜固体半空间中传播。

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The interaction between a bounded ultrasonic beam and a liquid wedge over a solid half-space is studied theoretically as well as experimentally. A semi-analytical technique called Distributed Point Source Method (DPSM) is adopted for modeling the ultrasonic field in a wedge-shaped fluid structure on a solid half-space. This study is important for analyzing and understanding the propagation of ultrasonic waves used for underwater communications and inspections. A better understanding of the elastic wave propagation in water and in submerged marine strata near the seashore requires extensive investigations of such problem geometries. The semi-analytical technique used in this dissertation considers a bounded acoustic beam striking a fluid-solid interface between a fluid wedge and a solid half-space. Solution of this problem is beyond the scope of the currently available analytical methods when the beam is bounded. However, it is important to model the bounded beams because, in all underwater communications and inspections, bounded beams are used. Currently, only numerical method [Boundary Element Method (BEM) or Finite Element Method (FEM)] based packages (e.g., PZFlex) are in principle capable of modeling ultrasonic fields in such structures. However, these packages are not very accurate and are very CPU-intensive for high-frequency ultrasonic problems. At high frequencies, FEM- and BEM-based packages require huge amount of computation memory and time for their executions that the DPSM technique can avoid. The effect of the angle variation between the fluid-solid interface and the fluid wedge on the wave propagation characteristics is studied and presented.
机译:理论上和实验上都研究了有界超声束和固体半空间上的液体楔之间的相互作用。采用一种称为“分布式点源方法”(DPSM)的半分析技术对固体半空间上的楔形流体结构中的超声场进行建模。这项研究对于分析和理解用于水下通讯和检查的超声波的传播非常重要。对弹性波在水中和在海岸附近的海底淹没层中传播的更好理解需要对这种问题的几何形状进行广泛的研究。本文采用的半解析技术考虑了有界声束撞击流体楔与固体半空间之间的流固界面。当束缚边界时,此问题的解决超出了当前可用分析方法的范围。但是,对边界梁进行建模很重要,因为在所有水下通信和检查中都使用了边界梁。当前,原则上仅基于数值方法[边界元方法(BEM)或有限元方法(FEM)]的封装(例如,PZFlex)能够对这种结构中的超声场进行建模。但是,这些软件包不是很准确,并且对于高频超声问题非常占用CPU资源。在高频率下,基于FEM和BEM的程序包需要大量的计算内存和执行时间,这是DPSM技术可以避免的。研究并提出了固液界面与流体楔角变化对波传播特性的影响。

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