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Nonlinear ultrasonic guided waves-Principles for nondestructive evaluation

机译:非线性超声波引导波 - 非破坏性评价原则

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摘要

Research into the use of nonlinear ultrasonic guided waves for nondestructive evaluation is expanding at a high rate because of the great potential benefit that they possess for early detection of material degradation. However, development of inspection and testing strategies is complicated because (ⅰ) the underlying physical principles are complex, (ⅱ) there is a broad spectrum of possible solutions but only a limited number that have been shown to be effective, and (ⅲ) the nonlinearity is weak and thus its measurement is challenging. This Tutorial aims to provide a foundation for researchers and technology-transitioners alike, to advance the application of nonlinear ultrasonic guided waves and ultimately transform how the service lives of structural systems are managed. The Tutorial focuses on the physical principles of nonlinear ultrasonic guided waves leading to the so-called internal resonance conditions that provide a means for selecting primary waves that generate cumulative secondary waves. To detect material degradation, we are primarily interested in nonlinearity stemming from the material itself, which is represented as hyperelastic. For the special case of plates, internal resonance points have been identified and case studies are presented to illustrate some of the applications. The Tutorial has one new result not published in a research paper; finite element simulation of energy transfer from shear-horizontal primary waves to symmetric Lamb waves at the second harmonic.
机译:利用非线性超声波导波的研究以高速度扩大,因为它们具有早期检测物质降解的巨大潜在益处。然而,检验和测试策略的发展是复杂的,因为(Ⅰ)潜在的物理原则是复杂的,(Ⅱ)存在广泛的可能解决方案,但只有有限的数量已被证明是有效的,并且(Ⅲ)非线性较弱,因此其测量是具有挑战性的。本教程旨在为研究人员和技术过渡者提供基础,以推进非线性超声波引导波的应用,并最终改变结构系统的服务寿命。本教程专注于导致所谓的内部共振条件的非线性超声波引导波的物理原理,该装置提供了一种用于选择产生累积次级波的初级波的装置。为了检测物质劣化,我们主要对来自材料本身的非线性感兴趣,其表示为过弹性。对于板的特殊情况,已经确定了内部共振点,并提出了案例研究以说明一些应用。本教程有一个新的结果未在研究文件中发布;二次谐波剪切水平初级波对对称羊波的能量转移有限元模拟。

著录项

  • 来源
    《Journal of Applied Physics》 |2021年第2期|021101.1-021101.28|共28页
  • 作者

    Cliff J. Lissenden;

  • 作者单位

    Department of Engineering Science and Mechanics Penn State University Park Pennsylvania 16802 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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