A PARAMETRIZED REDUCED ORDER MODEL FOR RAPID EVALUATION OF FLAWS IN GUIDED WAVE TESTING

Paul Sieber, K. Agathos, R. Soman, Wieslaw OSTACHOWICZWIESLAW OSTACHOWICZ, E. Chatzi
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引用次数: 1

Abstract

Data from guided wave propagation in structures, produced by piezoelectric elements, can offer valuable information regarding the possible existence of flaws. Numerical models can be used to complement the attained data for refining the potential for flaw characterization. Unfortunately, evaluation of these models remains computationally expensive, especially for small defects, due to the short wavelength required for detection and, the in turn fine discretization in time and space. This renders real–time simulation infeasible, rendering GW–approaches less attractive for inverse problem formulations, where the forward problem needs to be solved several times. We propose an accelerated computation method, which exploits the properties of guided waves interacting with defects, where an extra band of waves is created, whose phase is differentiated, depending on the location of the flaw (e.g. notch) within the medium. To expedite the actual simulation for the inverse problem, the system is parametrized in terms of the location of the flaw and, in an offline phase, is repeatedly solved to produce snapshots of the system’s response. The snapshots are used to create a physics–informed interpolation of the solution of the wave propagation problem for different flaw locations. The gained information is then used in an inverse setting for localising the defect using an evolution strategy as a means to stochastic, derivative-free numerical optimization. The method is demonstrated in simulations of a 2D slice of a thin plate.
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导波检测中缺陷快速评估的参数化降阶模型
由压电元件产生的导波在结构中的传播数据可以提供有关可能存在缺陷的有价值的信息。数值模型可以用来补充所获得的数据,以改进缺陷表征的潜力。不幸的是,由于检测所需的波长较短,并且反过来在时间和空间上进行精细离散,因此对这些模型的评估在计算上仍然昂贵,特别是对于小缺陷。这使得实时模拟不可行,使得gw方法对反问题公式不那么有吸引力,其中正向问题需要解决几次。我们提出了一种加速计算方法,该方法利用导波与缺陷相互作用的特性,其中产生了额外的波带,其相位根据介质中缺陷(例如缺口)的位置而区分。为了加快反问题的实际模拟,根据缺陷的位置对系统进行参数化,并在离线阶段重复求解以生成系统响应的快照。这些快照用于创建不同缺陷位置的波传播问题解的物理信息插值。然后将获得的信息用于逆设置,以使用进化策略作为随机,无导数数值优化的手段来定位缺陷。通过对薄板二维切片的仿真验证了该方法的有效性。
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