...
首页> 外文期刊>Engineering Fracture Mechanics >Correlation between fracture and damage for quasi-brittle bi-material interface cracks
【24h】

Correlation between fracture and damage for quasi-brittle bi-material interface cracks

机译:准脆性双材料界面裂纹的断裂与损伤之间的关系

获取原文
获取原文并翻译 | 示例
           

摘要

Fracture at a bi-material interface is essentially mixed-mode, even when the geometry is symmetric with respect to the crack and loading is of pure Mode I, due to the differences in the elastic properties across an interface which disrupts the symmetry. The linear elastic solutions of the crack tip stress and displacement fields show an oscillatory type of singularity. This poses numerical difficulties while modeling discrete interface cracks. Alternatively, the discrete cracks may be modeled using a distributed band of micro-cracks or damage such that energy equivalence is maintained between the two systems. In this work, an approach is developed to correlate fracture and damage mechanics through energy equivalence concepts and to predict the damage scenario in quasi-brittle bi-material interface beams. The study is aimed at large size structures made of quasi-brittle materials failing at concrete-concrete interfaces. The objective is to smoothly move from fracture mechanics theory to damage mechanics theory or vice versa in order to characterize damage. It is concluded, that through the energy approach a discrete crack may be modeled as an equivalent damage zone, wherein both correspond to the same energy loss. Finally, it is shown that by knowing the critical damage zone dimension, the critical fracture property such as the fracture energy can be obtained.
机译:双材料界面处的断裂基本上是混合模式,即使几何形状相对于裂纹是对称的并且载荷是纯模式I,这是由于跨界面弹性特性的差异(破坏对称性)所致。裂纹尖端应力和位移场的线性弹性解显示出一种奇异的振荡类型。在对离散界面裂纹进行建模时,这会造成数值困难。可替代地,可以使用微裂纹或破坏的分布带对离散裂纹进行建模,从而在两个系统之间保持能量等效。在这项工作中,开发了一种通过能量等效概念关联断裂和损伤力学并预测准脆性双材料界面梁损伤情况的方法。这项研究针对的是由准脆性材料制成的大型结构,在混凝土和混凝土的界面处破裂。目的是平稳地从断裂力学理论过渡到损伤力学理论,反之亦然,以表征损伤。结论是,通过能量方法,可以将离散裂纹建模为等效损坏区域,其中两个都对应于相同的能量损失。最后,表明通过知道临界损伤区的尺寸,可以获得临界断裂性能,例如断裂能。

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