Analytical Determination of Localized Heat Damage in Fiberglass Reinforced Resin Beams Using the Frequency Response Shifting

H. Nayeb-Hashemi, A. Harrison, A. Vaziri
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引用次数: 3

Abstract

The dynamic response of a localized, heat-damaged, fiberglass-reinforced epoxy cantilever beam is obtained as a function of damaged length and damage severity. A heat-damaged area causes a reduction in the local stiffness of the beam and introduces a complex damping in the damaged zone. These variations in the local mechanical properties could result in changing vibration characteristics of the beam. The variations in the system characteristic could then be used to assess the structural integrity of the composite beam. A cantilever beam made of a glass fiber-resin composite material and damaged by a hot tip contact element and a laser beam is evaluated for its dynamic response using numerical methods. The laser beam caused local melting of many fibers in the damaged area and thus reducing the stiffness of the beam in the damaged area. The beam is analyzed by modeling it as a lumped system and a continuous system and by a finite element. The goal of the research is to find out whether the changes in the frequency response of the damaged beam can be used as a diagnostic tool for estimating the severity of the damage. The results show that the size and location of damage are equally as important as the local stiffness and damping of the damaged region in terms of their effects on the beam resonant frequencies. The results indicate that the resonance frequencies may not be suitable parameters for estimating the residual tensile strength of the composite. A 50% reduction in the local bending rigidity produced relatively little change in the system first resonance frequency. In contrast, it significantly reduced the residual tensile strength of the composite.
用频响位移法分析玻璃钢树脂梁的局部热损伤
得到了局部热损伤玻璃纤维增强环氧树脂悬臂梁的动态响应与损伤长度和损伤程度的函数关系。热损伤区域导致梁的局部刚度降低,并在损伤区域引入复杂的阻尼。这些局部力学性能的变化会导致梁的振动特性发生变化。系统特性的变化可以用来评估复合梁的结构完整性。用数值方法计算了玻璃纤维-树脂复合材料悬臂梁在热尖端接触元件和激光束作用下的动态响应。激光束使损伤区域内的许多纤维局部熔化,从而降低了损伤区域内光束的刚度。通过将梁建模为集总系统和连续系统并进行有限元分析。研究的目的是找出损伤梁的频率响应变化是否可以作为估计损伤严重程度的诊断工具。结果表明,损伤的大小和位置与损伤区域的局部刚度和阻尼对梁谐振频率的影响同等重要。结果表明,共振频率可能不是估计复合材料残余抗拉强度的合适参数。局部弯曲刚度降低50%,系统第一共振频率的变化相对较小。相反,它显著降低了复合材料的残余抗拉强度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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