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Elastic Wave Propagation in Corrugated Wave Guides

机译:波纹波导中的弹性波传播

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摘要

Elastic Wave propagation in structures with irregular boundaries is studied by transforming the plates with irregular surfaces to sinusoidal wave-guides. Guided elastic wave in a two-dimensional periodically corrugated plate is studied analytically. The plate material is considered as homogeneous, isotropic and linearly elastic. In a periodically corrugated wave-guide, all possible spectral orders of wave numbers are considered. The dispersion equation is obtained by applying the traction free boundary conditions at the two surfaces. The analysis is carried out in the wave-number domain for both symmetric and anti-symmetric modes. Non-propagating 'stop bands' and propagating 'pass bands' are investigated. Experimental analyses with two different pairs of transducers are also performed and compared with the results from the mathematical analysis. Newly developed semi-analytical DPSM technique has been also adopted in this dissertation to model the ultrasonic field in sinusoidally corrugated plate. Distributed Point Source Method (DPSM) is gradually gaining popularity in the field of Non-Destructive Evaluation (NDE). DPSM can be used to calculate the ultrasonic field (pressure, velocity and displacement in a fluid or stress and displacement in a solid) generated by ultrasonic transducers. So far the technique has been used to model ultrasonic field in homogeneous or multilayered fluid structures. In this dissertation the method is extended to model the ultrasonic field generated in both fluid and solid media. The Prime objective of using DPSM technique in this dissertation is to model the ultrasonic field generated in the corrugated wave guide. This method has never been used to model ultrasonic field in solids. Development of stress and displacement Green's functions in solids are presented. In addition to the wave propagation problem in the sinusoidal wave guide, a few unsolved problems such as ultrasonic field generated by bounded acoustic beams in multilayered fluid structures, near a fluid-solid interface and in flat solid isotropic plates are also presented in this dissertation.
机译:通过将具有不规则表面的板转换为正弦波波导,研究了具有不规则边界的结构中的弹性波传播。对二维周期性波纹板中的导波进行了解析研究。板材被认为是均匀的,各向同性的和线性弹性的。在周期性波纹波导中,考虑了所有可能的波数频谱阶数。通过在两个表面上应用牵引自由边界条件来获得色散方程。对于对称模式和反对称模式,都在波数域中进行分析。研究了非传播的“阻带”和传播的“通带”。还使用两对不同的换能器进行实验分析,并将其与数学分析的结果进行比较。本文还采用了最新开发的半解析DPSM技术对正弦波纹板的超声场进行建模。分布式点源方法(DPSM)在无损评估(NDE)领域正逐渐普及。 DPSM可用于计算由超声换能器产生的超声场(流体中的压力,速度和位移或固体中的应力和位移)。迄今为止,该技术已用于对均匀或多层流体结构中的超声场进行建模。本文扩展了对流体和固体介质中产生的超声场进行建模的方法。本文采用DPSM技术的主要目的是对波纹波导中产生的超声场进行建模。该方法从未用于对固体中的超声场进行建模。应力和位移的发展过程介绍了格林在固体中的功能。除了正弦波导管中的波传播问题外,本文还提出了一些未解决的问题,例如由束缚声束在多层流体结构中,在流固边界附近和在平坦的固体各向同性平板中产生的超声场。

著录项

  • 作者

    Banerjee Sourav;

  • 作者单位
  • 年度 2005
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  • 原文格式 PDF
  • 正文语种 EN
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