基于振动的层状复合板损伤检测和定位的实验与数值研究

Saeesh Verenkar Saeesh Verenkar, I. Sridhar, Vinayak Uppin, P. S. Shivakumar Gouda
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引用次数: 0

摘要

复合材料的损伤检测对于确保工程结构的安全性和可靠性至关重要。传统方法往往难以准确识别板状结构中的损伤,尤其是在涉及多重损伤或小规模分层的情况下。本研究通过实验和数值模态分析,重点研究复合材料板中分层的检测和定位。借助手工层压技术,制备了有损伤和无损伤的八层玻璃-环氧树脂编织复合材料层压板。层压板被固定在夹紧-自由-自由(CFFF)边界条件下进行实验模态分析,通过引入受控损伤来检验其对模态特性的影响。为了验证损坏和未损坏复合材料层压板的自然频率(NFs),使用 ANSYS 参数设计语言(APDL)进行了数值分析。此外,为了进一步了解在各种损坏情况下如何利用模态形状及其空间导数对复合材料板进行损坏定位,还使用 MATLAB 对模拟结果进行了后处理。采用有限差分法计算导数,并提出了一种新型损伤指数(DI),以增强损伤定位能力。研究结果表明,无论是在单个还是多个损伤情况下,所提出的损伤指数都能有效、精确地识别板状结构中的损伤。这项研究提出了一种识别和精确定位复合板材损伤的新方法,从而为结构健康监测(SHM)应用领域做出了宝贵贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental and Numerical Study on Vibration-Based Damage Detection and Localization in Laminated Composite Plates
Damage detection in composite materials is crucial for ensuring the safety and reliability of engineering structures. Conventional methods often face challenges in accurately identifying damage in plate-like structures, particularly in scenarios involving multiple damages or small-scale delamination. This study focuses on investigating the detection and localization of delamination in composite plates by employing both experimental and numerical modal analysis. An eight-ply woven Glass-Epoxy composite laminate with and without damage was prepared with the aid of hand lamination technique. Laminate was fixed to a Clamped-Free-Free-Free (CFFF) boundary condition for experimental modal analysis by introducing controlled damage to examine its impact on modal properties. To validate the natural frequencies (NFs) of damaged and undamaged composite laminates, a numerical analysis was conducted using ANSYS Parametric Design Language (APDL). Further, to advance the understanding of using modal shapes and their spatial derivatives for damage localization in composite plates under various damage situations, post-processing of simulation results was conducted using MATLAB. Finite Difference Method has been employed to calculate the derivatives, and a novel damage index (DI) is proposed to enhance damage localization capabilities. The results affirm that the proposed DI is effective and precise in identifying damage in plate-like structures, both for individual and multiple damage scenarios. This research study presents a novel approach for identifying and pinpointing damage in composite plates, thereby making a valuable contribution to the field of structural health monitoring (SHM) applications
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