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Modeling laminates using a layerwise finite element with enhanced strains for interlaminar stress recovery and delamination characteristics.

机译:使用具有增强应变的分层有限元来对层合物进行建模,以实现层间应力恢复和分层特性。

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A layerwise finite element with enhanced strains is developed for the analysis of laminates with special emphasis on the recovery of interlaminar stresses and the study of delamination characteristics. A laminate interface, where stresses are to be computed, is modeled as a contact zone between portions of the laminate separated by this interface. Interlaminar stresses are recovered at this interface from the equilibrium consideration. Effectiveness of this interface model is studied by solving for interlaminar stresses in a laminated composite plate in bending. The interlaminar stresses recovered from the present study are compared with exact solutions and those obtained with other stress recovery methods. Present method of stress recovery is further applied to a free edge problem wherein an angle-ply laminate in bending is considered, and the results are compared against that from the VKFE solutions of Robbins and Reddy.; Characteristics of the interface model are studied for a delamination problem by considering a double cantilever problem under a splitting load. Since the interface model provides the facility for the closure of delamination by a small amount, strain energy release rates were evaluated by actual crack closure (Crack Closure Method) and by virtual crack closure (Virtual Crack Closure Method) for a comparative study. Finally, a cylindrical cross-ply laminate in bending is considered for its delamination characteristics. The critical load before delamination growth is studied for different initial geometries of the laminate differing in their delamination length and imperfection ratio values. Influence of the variation in strength parameters such as strain energy release rates on the critical load values has also been studied.
机译:开发了一种具有增强应变的分层有限元,用于分析层压板,特别强调层间应力的恢复和分层特性的研究。将要在其中计算应力的层压板界面建模为层压板被该界面分隔的部分之间的接触区域。从平衡考虑,在该界面处恢复了层间应力。通过求解层合复合板弯曲时的层间应力,研究了该界面模型的有效性。从本研究中恢复的层间应力与精确解和通过其他应力恢复方法获得的解进行比较。当前的应力恢复方法被进一步应用于自由边缘问题,其中考虑了弯曲中的角铺层层压板,并且将结果与来自Robbins和Reddy的VKFE解决方案的结果进行了比较。考虑分层荷载作用下的双悬臂问题,研究了界面模型的分层问题。由于界面模型为少量分层提供了便利,因此通过实际的裂纹闭合(裂纹闭合方法)和虚拟的裂纹闭合(虚拟裂纹闭合方法)评估了应变能释放速率,以进行比较研究。最后,考虑到弯曲的圆柱形交叉层压板的分层特性。对于分层长度和缺陷率值不同的层压板的不同初始几何形状,研究了分层生长之前的临界载荷。还研究了强度参数变化(例如应变能释放速率)对临界载荷值的影响。

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