A Study of Crack Growth in Sandwich Composite Beams

S. El-Sayed, S. Sridharan
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Abstract

The paper proposes models to track the face-core interfacial delamination growth and crack kinking into the sandwich core, respectively. The models consist in interposing a cohesive layer along a pre-existing delamination or an identified plane of crack propagation. The former, designated as CLD (cohesive layer delamination model) is investigated first in detail using an example of a restrained beam specimen. The Influence of the key parameters of the model, viz. the thickness of the cohesive layer and the strength and stiffness of the cohesive layer material, have been studied. It is found that the model is fairly robust and is not sensitive to changes in parameters other than the critical strain energy release rate. The second model is a highly simplified one, but it is nevertheless a comprehensive model which can track the crack path by identifying crack planes in various elements using a maximum tensile stress criterion. This is designated as CLDK model as it deal with delamination and crack kinking — whichever is the preferred mode of fracture. The models are constructed ensuring that the crack opening is controlled by the critical value of strain energy release rate in mode I fracture. Experimental results of two sandwich specimens, viz. bottom restrained beams with 0° and −10° tilt angle respectively were used for comparison. The results indicate that the both the models are able to capture the initiation and track the growth of the interfacial delamination. The CLDK model tracks the crack kinking into the core, and its subsequent return to the facesheet-core interface.
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夹层复合材料梁裂纹扩展研究
本文分别提出了面核界面分层生长和夹层核裂纹扭结的模型。该模型包括沿预先存在的分层或已识别的裂纹扩展平面插入内聚层。本文首先以约束梁为例,详细研究了内聚层脱层模型。研究了黏结层厚度、黏结层材料强度和刚度对模型关键参数的影响。结果表明,该模型具有较强的鲁棒性,对除临界应变能释放率外的其他参数变化不敏感。第二个模型是一个高度简化的模型,但它仍然是一个全面的模型,可以通过使用最大拉应力准则识别各个单元的裂纹面来跟踪裂纹路径。这被指定为CLDK模型,因为它处理分层和裂纹扭结-无论哪种是首选的断裂模式。建立了以I型断裂的应变能释放率临界值控制裂纹张开的模型。采用倾角分别为0°和- 10°的底部约束梁两种夹层试件的试验结果进行对比。结果表明,这两种模型都能捕捉界面分层的起始和生长过程。CLDK模型跟踪进入内核的裂纹,并随后返回到facesheet-core界面。
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