A novel shape sensing approach based on the coupling of Modal Virtual Sensor Expansion and iFEM: Numerical and experimental assessment on composite stiffened structures

IF 4.4 2区 工程技术 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
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Abstract

Shape sensing, i.e. the reconstruction of the displacement field of a structure from discrete strain measurements, is becoming crucial for the development of a modern Structural Health Monitoring framework. Nevertheless, an obstacle to the affirmation of shape sensing as an efficient monitoring system for existing structures is represented by its requirement for a significant amount of sensors. Two shape sensing methods have proven to exhibit complementary characteristics in terms of accuracy and required sensors that make them suitable for different applications, the inverse Finite Element Method (iFEM) and the Modal Method (MM). In this work, the formulations of these two methods are coupled to obtain an accurate shape sensing approach that only requires a few strain sensors. In the proposed procedure, the MM is used to virtually expand the strains coming from a reduced number of strain measurement locations. The expanded set of strains is then used to perform the shape sensing with the iFEM. The proposed approach is numerically and experimentally tested on the displacement reconstruction of composite stiffened structures. The results of these analyses show that the formulation is able to strongly reduce the number of required sensors for the iFEM and achieve an extremely accurate displacement reconstruction.

基于模态虚拟传感器扩展和 iFEM 耦合的新型形状传感方法:复合加劲结构的数值和实验评估
形状传感,即通过离散应变测量重建结构的位移场,对于现代结构健康监测框架的发展至关重要。然而,将形状传感作为现有结构的高效监测系统的一个障碍在于它需要大量的传感器。事实证明,有两种形状传感方法(反向有限元法 (iFEM) 和模态法 (MM))在精度和所需传感器方面具有互补性,适合不同的应用。在这项工作中,这两种方法的公式被结合起来,以获得一种只需少量应变传感器的精确形状传感方法。在建议的程序中,MM 用于虚拟扩展来自数量较少的应变测量位置的应变。然后利用扩展的应变集通过 iFEM 进行形状传感。该方法对复合加劲结构的位移重建进行了数值和实验测试。分析结果表明,该方法能够大大减少 iFEM 所需的传感器数量,并实现极其精确的位移重建。
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来源期刊
Computers & Structures
Computers & Structures 工程技术-工程:土木
CiteScore
8.80
自引率
6.40%
发文量
122
审稿时长
33 days
期刊介绍: Computers & Structures publishes advances in the development and use of computational methods for the solution of problems in engineering and the sciences. The range of appropriate contributions is wide, and includes papers on establishing appropriate mathematical models and their numerical solution in all areas of mechanics. The journal also includes articles that present a substantial review of a field in the topics of the journal.
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