频域动态下损伤检测的顺序传感器布置

IF 3.5 3区 工程技术 Q1 MATHEMATICS, APPLIED
Mark J. Chen , Kavinayan Sivakumar , Gregory A. Banyay , Brian M. Golchert , Timothy F. Walsh , Michael M. Zavlanos , Wilkins Aquino
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引用次数: 0

摘要

识别和监测损伤对结构的维护越来越重要。提出了一种集成基于模型的推理和最优传感器布局的鲁棒主动传感框架。通过紧密耦合测量数据和数据采集场景,可以同时使用损伤估计和传感器放置的方法来连续准确地评估结构。在这项工作中,首先使用带有惩罚损伤参数的传统模型更新方法开发了一个偏微分方程约束的损伤估计公式。然后,该公式围绕损伤估计器进行线性化,以产生理想传感器位置的最优实验设计(OED)问题。因此,使用基于Fisher信息矩阵(FIM)的方法假设同时感知框架如下:给定与最新传感器信息相关的当前候选损伤状态,找到最小化FIM某些度量的下一个传感器位置并更新损伤估计器。通过在损伤估计器中引入修正误差本构方程(MECE)函数,增强了传感框架。加入MECE后,由于限制了损伤估计器陷入局部极小值,使得框架更加鲁棒。通过数值算例,我们证明了我们的方法使用少量的传感器位置产生准确的损伤估计。此外,我们将我们的结果与使用随机传感器选择和专家选择的位置获得的结果进行比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sequential sensor placement for damage detection under frequency-domain dynamics
Identification and monitoring of damage have a growing importance in the maintenance of structures. A robust active sensing framework that integrates model-based inference and optimal sensor placement is proposed. By tightly coupling measured data and data acquisition scenarios, a simultaneous approach of damage estimation and sensor placement can be used to continuously and accurately assess a structure. In this work, a partial differential equation-constrained formulation for damage estimation is first developed using a conventional model-updating approach with a penalization damage parameter. Then, this formulation is linearized around the damage estimator to produce an Optimal Experimental Design (OED) problem for desirable sensor locations. Hence, the simultaneous sensing framework is postulated using a Fisher Information Matrix (FIM)-based approach as follows: given a current candidate damage state associated with the most up-to-date sensor information, find the next sensor location that minimizes some metric of the FIM and update the damage estimator. The sensing framework is also enhanced by introducing a Modified Error in Constitutive Equations (MECE) functional in the damage estimator. Adding MECE makes the framework more robust by limiting the damage estimator from being trapped in local minima. Through numerical examples, we show that our approach produces accurate damage estimators using a small number of sensor locations. In addition, we compare our results to those obtained using random sensor selections and expertly selected locations.
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来源期刊
CiteScore
4.80
自引率
3.20%
发文量
92
审稿时长
27 days
期刊介绍: The aim of this journal is to provide ideas and information involving the use of the finite element method and its variants, both in scientific inquiry and in professional practice. The scope is intentionally broad, encompassing use of the finite element method in engineering as well as the pure and applied sciences. The emphasis of the journal will be the development and use of numerical procedures to solve practical problems, although contributions relating to the mathematical and theoretical foundations and computer implementation of numerical methods are likewise welcomed. Review articles presenting unbiased and comprehensive reviews of state-of-the-art topics will also be accommodated.
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