...
首页> 外文期刊>Theoretical and Applied Fracture Mechanics >Fracture load prediction under mixed mode I plus II using a stress based method for brittle materials tested with the asymmetric four-point bend specimen
【24h】

Fracture load prediction under mixed mode I plus II using a stress based method for brittle materials tested with the asymmetric four-point bend specimen

机译:使用基于应力的脆性方法在混合模式I加II下的断裂载荷预测,其用不对称的四点弯曲标本测试的脆性材料

获取原文
获取原文并翻译 | 示例
           

摘要

Fracture load prediction for brittle cracked components under mixed mode tensile-shear loading is an essential task for integrity assessments and reliability analysis of structures containing flaws or cracks. Most of the available fracture criteria are usually derived based on the crack tip stress /strain fields that consider a limited terms of William's infinite series expansion that are related to singular stress term (K-I and K-II), first non-singular stress term (T-stress) and sometimes other higher order terms. However, an approach is proposed in this research for mixed mode fracture prediction that does not need direct determining the crack tip fracture parameters (i.e. the coefficients of the William's series expansion) and instead takes into account the total tangential stress component in predicting the corresponding fracture load under any desired mode I/II mixity. For employing this simple model which is called "Tangential stress contour-TSC", it is only required to obtain the contour of tangential stress component ahead of the crack tip via performing a numerical finite element analysis. Based on this model at the onset of fracture which corresponds to the critical fracture load of the cracked specimen the maximum tangential stress (sigma(theta theta)) at a critical distance r(c) from the crack tip becomes identical with the tensile strength (sigma(t)) of the material. The TSC criterion was utilized for predicting the mixed mode I/II fracture loads of two rock materials (granite and marble) tested with the edge cracked asymmetric four-point bend (AFPB) specimen. It was demonstrated that the suggested TSC model can predict very well the fracture loads of tested materials for the whole mode mixities ranging from pure mode I to pure mode II.
机译:混合模式下脆性裂纹组分的断裂载荷预测拉伸剪切负载是用于完整性评估和含有缺陷或裂缝的结构可靠性分析的基本任务。大多数可用的骨折标准通常基于考虑与奇异应激术语(Ki和K-II)相关的有限威廉的无限串联扩展的裂缝尖端应力/应变字段来源的裂缝尖端应力/应变字段。 T-Regress)有时候其他高阶术语。然而,在该研究中提出了一种方法,用于混合模式断裂预测,不需要直接确定裂缝尖端裂缝参数(即威廉串联扩展的系数),而是考虑到预测相应骨折的总切向应力分量在任何所需模式I / II混合下负载。为了采用称为“切向应力轮廓-TSC”的简单模型,只需要通过执行数值有限元分析来获得裂缝尖端前方的切向应力分量的轮廓。基于该模型的裂缝开始,该模型对应于裂缝试样的临界断裂载荷,来自裂纹尖端的临界距离R(c)处的最大切向应力(Sigma(θ))与拉伸强度相同(材料的Sigma(T)。 TSC标准用于预测与边缘破裂的不对称四点弯曲(AFPB)样本测试的两个岩石材料(花岗岩和大理石)的混合模式I / II断裂载荷。结果表明,建议的TSC模型可以非常好地预测从纯模式I到纯模式II的整个模式混合的测试材料的断裂载荷。

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