Analysis of damage control of thin plate with piezoelectric actuators using finite element and machine learning approach

Asraar Anjum, Abdul Aabid Shaikh, Meftah Hriari
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Abstract

In recent studies, piezoelectric actuators have been recognized as a practical and effective material for repairing cracks in thin-walled structures, such as plates that are adhesively bonded with piezoelectric patches due to their electromechanical effects. In this study, we used the finite element method through the ANSYS commercial code to determine the stress intensity factor (SIF) at the crack tip of a cracked plate bonded with a piezoelectric actuator under a plane stress model. By running various simulations, we were able to examine the impact of different aspects that affect this component, such as the size and characteristics of the plate, actuator, and adhesive bond. To optimize performance, we utilized machine learning algorithms to examine how these characteristics affect the repair process. This study represents the first-time machine learning has been used to examine bonded PZT actuators in damaged structures, and we found that it had a significant impact on the current problem. As a result, we were able to determine which of these parameters were most helpful in achieving our goal and which ones should be adjusted to improve the actuator's quality and reduce significant time and costs.
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基于有限元和机器学习方法的压电薄板损伤控制分析
在最近的研究中,压电驱动器被认为是一种实用而有效的材料,用于修复薄壁结构中的裂纹,例如由于压电片的机电效应而与薄壁结构中的压电贴片粘接在一起的薄壁结构。本研究采用有限元法,通过ANSYS商用代码,确定平面应力模型下压电致动器粘结裂纹板裂纹尖端的应力强度因子(SIF)。通过运行各种模拟,我们能够检查影响该组件的不同方面的影响,例如板的尺寸和特性,执行器和粘合剂粘合。为了优化性能,我们利用机器学习算法来检查这些特征如何影响维修过程。这项研究代表了机器学习首次被用于检查受损结构中的粘结PZT致动器,我们发现它对当前问题有重大影响。因此,我们能够确定哪些参数对实现我们的目标最有帮助,哪些参数应该进行调整,以提高执行器的质量,并减少大量的时间和成本。
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