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Stochastic Wavenumber Estimation: Damage Detection Through Simulated Guided Lamb Waves

机译:随机波数估计:通过模拟引导羔羊波损坏检测

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Acoustic Wavenumber Spectroscopy (AWS) is a technique for nondestructive testing and evaluation capable of identifying local damage in thin plates through the estimation of the characteristic wavenumber of propagating elastic waves. Current state of the art in AWS estimates wavenumber based on the maximum data fit of the wavenumber dispersion curve and derives thickness deterministically through the Lamb wave equations. Successful determination of thickness from the measurements through inverse analysis is dependent upon two aspects: uncertainties regarding material properties of the system (parametric uncertainty) and uncertainties regarding data collected in the field under less than ideal conditions (experimental uncertainty). Thus, the deterministic approach may lead to large false positives in the presence of parametric and experimental uncertainties. The focus of this paper is to develop a stochastic approach for inferring thickness from the measurements in which both parametric and experimental uncertainties are accounted for. Herein, parametric uncertainty is managed by calibrating material-dependent properties using wavenumber measurements. Experimental uncertainty is controlled through incorporation of expert judgment by means of an elicited prior uncertainty of thickness. The technological advancement produced in this study is demonstrated on a case study application of an aluminum plate with imposed thinning.
机译:声波数光谱(AWS)是一种用于非破坏性测试和评估的技术,能够通过估计传播弹性波的特征波数来识别薄板中的局部损坏。 AWS在AWS中的当前技术基于波数色散曲线的最大数据配合估计波数,并通过羊波方程确定厚度。通过逆分析成功测定从测量的测量的厚度取决于两个方面:关于系统的材料性质(参数不确定度)和关于在低于理想条件下收集的数据的不确定性(实验性不确定性)的不确定性。因此,确定性方法可能导致参数和实验不确定因素存在下的大的误报。本文的重点是开发一种随机方法,用于推断从参数和实验不确定因素的测量中推断出来的厚度。这里,通过使用波数测量校准依赖材料依赖性的性质来管理参数不确定性。通过通过引发的厚度的引发的优异不确定性将专家判断纳入专家判断,控制实验不确定性。在该研究中产生的技术进步在铝板具有施加稀释的情况下施加的案例研究。

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