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Crack propagation paths in layered, graded composites

机译:分层渐变复合材料中的裂纹扩展路径

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Layered, graded material structures exhibit anisotropies in elastic properties and failure resistance that can strongly influence the propagation of cracks, and hence overall structural integrity. This study examines the influences on propagation trajectory for cracks initially oriented parallel to the layers in layered, graded alumina-epoxy composites, produced experimentally by infiltration of layered porous alumina bodies. Notched specimens were tested under monotonic and cyclic bending loading. Finite element (FE) modelling was used to predict crack-tip stress fields and crack propagation paths. Measured initial crack deflection angles agreed with predictions from FE results, and observations from phase-shifted Moire interferometry. Crack propagation paths showed good agreement with FE predictions, except when cracks were influenced by interfaces between layers. Influences of elastic property gradient, microstructural heterogeneity and toughness anisotropy at interfaces are addressed, and the implications for structural reliability of layered structures are discussed.
机译:分层的渐变材料结构在弹性特性和抗破坏性方面表现出各向异性,这些各向异性会严重影响裂纹的扩展,进而影响整体结构的完整性。这项研究检查了裂纹的扩展轨迹的影响,该裂纹最初平行于层状渐变氧化铝-环氧树脂复合材料中的层定向,这些裂纹是通过渗透多孔氧化铝体而实验产生的。缺口试样在单调和循环弯曲载荷下进行测试。有限元(FE)建模用于预测裂纹尖端应力场和裂纹扩展路径。测得的初始裂纹偏斜角与有限元结果的预测以及相移莫尔干涉仪的观测结果一致。裂纹的传播路径与有限元预测结果吻合良好,但裂纹受层间界面的影响除外。讨论了界面处弹性梯度,微观结构异质性和韧性各向异性的影响,并讨论了层状结构对结构可靠性的影响。

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