首页> 外文会议>ASME International Mechanical Engineering Congress and Exposition >CRACK DEFLECTION NEAR A PLY INTERFACE IN A COMPOSITE LAMINATE
【24h】

CRACK DEFLECTION NEAR A PLY INTERFACE IN A COMPOSITE LAMINATE

机译:复合层压板中的PLY接口附近的裂纹偏转

获取原文

摘要

The deflection of a matrix crack near 0°/90° interface in a cross-ply laminate was studied numerically. In the finite element (FE) model, an initial matrix crack was introduced in the 90° layers away from the 0°/90° interface. The initial matrix crack could be initiated either at the middle of 90° layer or at one side of 0°/90° interface. The 0° layers and a part of the initial matrix crack were modeled using homogenized layer properties to simplify the model. The nonuniformly distributed fibers were modeled explicitly close to the 0°/90° interface in order to study the influence of this nonuniformity on the crack deflection process. The Energy Release Rate (ERR) of debond crack tip was calculated using Virtual Crack Closure Technique (VCCT) to study the debond growth. Maximum principal stress was then adopted to access the debond crack kinking qualitatively. It s found that when a macro-size matrix crack forms and propagate towards ply interface, the subsequent debonding and debond cracking process in nearby intact fiber shows some distinct differences compared to the same processes at single isolated fiber without considering the interaction with nearby debonded fiber and existing matrix crack. Meanwhile, present analysis shows clear influence of microstructures on the crack deflection process by affecting the fiber/matrix debonding and debond kinking processes.
机译:在数值上研究了矩阵裂纹的偏转近0°/ 90°界面。在有限元(FE)模型中,在远离0°/ 90°界面的90°层中引入初始矩阵裂缝。初始矩阵裂缝可以在90°层的中间或在0°/ 90°界面的一侧启动。使用均质层性质进行建模0°层和初始基质裂缝的一部分以简化模型。非均匀分布的纤维明确地靠近0°/ 90°界面进行建模,以研究这种不均匀性对裂缝偏转过程的影响。使用虚拟裂缝关闭技术(VCCT)计算借方裂缝尖端的能量释放速率(ERR)以研究借方的增长。然后采用最大主要压力来定性地访问借方裂缝扭结。发现当宏尺寸矩阵裂缝形成并朝向Ply接口传播时,附近完整光纤的后续剥离和借方开裂过程显示出与单个隔离纤维的相同过程相比的一些不同的差异,而无需考虑与附近的剥离纤维的相互作用和现有的矩阵裂缝。同时,目前的分析显示通过影响光纤/矩阵剥离和借助扭结过程的微观结构对裂缝偏转过程的显着影响。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号