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复合材料闭合分层的三维有限元模拟。

Three-dimensional finite element simulation of closed delaminations in composite materials.

机构信息

Wave Propagation and Signal Processing Research Group, K.U.Leuven Campus Kortrijk, E. Sabbelaan 53, 8500 Kortrijk, Belgium.

出版信息

Ultrasonics. 2012 Feb;52(2):315-24. doi: 10.1016/j.ultras.2011.09.001. Epub 2011 Sep 19.

Abstract

Early stage delaminations in composite materials tend to be closed at rest. Inspection with traditional linear ultrasonic techniques generally fails to diagnose and locate such imperfections. However, if undetected and left untreated, incipient defects may gradually grow within the material and eventually lead to failure of the component. Kissing bonds or clapping contacts inherently demand a non-linear diagnostic method, applying a finite excitation amplitude that is able to overcome an activation threshold to open and close the contact. In order to obtain a better understanding and analysis of the macroscopic non-linear behavior that can be observed at the component level, we developed and investigated the results of a finite element model for a composite material containing a single circular delamination. The model makes use of local node splitting and the non-linear constitutive behavior is implemented by means of spring-damper elements at the delamination interface. The results of this parametric study allow a better insight in the behavior of the excited delamination in experimental conditions, including the appearance of localized subharmonics and harmonics of the excitation frequency. Based on the developed model, two different detection and localization techniques (using either a single frequency or a sweep excitation) were demonstrated to determine position, shape, depth and orientation of one or multiple delaminations.

摘要

复合材料的早期分层往往在静止时是闭合的。使用传统的线性超声技术进行检测通常无法诊断和定位这种缺陷。然而,如果未被发现且未得到处理,初始缺陷可能会在材料内部逐渐扩展,并最终导致部件失效。胶合或拍合接触本质上需要一种非线性诊断方法,施加一个能够克服激活阈值以打开和关闭接触的有限激励幅度。为了更好地理解和分析在组件级别上可以观察到的宏观非线性行为,我们开发并研究了包含单个圆形分层的复合材料的有限元模型的结果。该模型利用局部节点分裂,通过分层界面上的弹簧-阻尼元件实现非线性本构行为。该参数研究的结果可以更好地了解在实验条件下激励分层的行为,包括激励频率的局部次谐波和谐波的出现。基于开发的模型,演示了两种不同的检测和定位技术(使用单一频率或扫频激励),以确定一个或多个分层的位置、形状、深度和方向。

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