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Coupled Attenuation and Multiscale Damage Model for Composite Structures

机译:复合结构的衰减与多尺度耦合损伤模型

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摘要

Composite materials are widely used in many applications for their high strength, low weight, and tailorability for specific applications. However, the development of robust and reliable methodologies to detect micro level damage in composite structures has been challenging. For composite materials, attenuation of ultrasonic waves propagating through the media can be used to determine damage within the material. Currently available numerical solutions for attenuation induce arbitrary damage, such as fiber-matrix debonding or inclusions, to show variations between healthy and damaged states. This paper addresses this issue by integrating a micromechanics analysis to simulate damage in the form of a fiber-matrix crack and an analytical model for calculating the attenuation of the waves when they pass through the damaged region. The hybrid analysis is validated by comparison with experimental stress-strain curves and piezoelectric sensing results for attenuation measurement. The results showed good agreement between the experimental stress-strain curves and the results from the micromechanics analysis. Wave propagation analysis also showed good correlation between simulation and experiment for the tested frequency range.
机译:复合材料因其高强度,低重量和针对特定应用的可定制性而被广泛用于许多应用中。但是,开发可靠,可靠的方法来检测复合结构中的微观损伤一直是具有挑战性的。对于复合材料,可以使用通过介质传播的超声波衰减来确定材料内部的损坏。当前可用的衰减数值解决方案会引起任意损坏,例如纤维基质剥离或夹杂物,以显示健康状态和损坏状态之间的差异。本文通过集成微力学分析以模拟纤维基质裂纹形式的损伤和计算波浪通过损伤区域时的衰减的分析模型,从而解决了这个问题。通过与实验应力-应变曲线和用于衰减测量的压电传感结果进行比较,验证了混合分析的有效性。结果表明,实验应力-应变曲线与微力学分析的结果吻合良好。波传播分析还表明,在测试频率范围内,仿真与实验之间具有良好的相关性。

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