教授 博士生导师
招生学科专业:
力学 -- 【招收博士、硕士研究生】 -- 航空学院
航空宇航科学与技术 -- 【招收博士、硕士研究生】 -- 航空学院
机械 -- 【招收博士、硕士研究生】 -- 航空学院
性别:男
学历:西北工业大学
学位:工学博士学位
所在单位:航空学院
联系方式:025-84895827 nsiguo(AT)nuaa.edu.cn
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所属单位:航空学院
发表刊物:ENGINEERING FRACTURE MECHANICS
关键字:Elastic-plastic crack border fields Out-of-plane constraint factor T-z In-plane constraint coefficient A(T) Higher order J-T-z-A(T) solution J-T-z solution
摘要:Higher order J-A(2) solution has been developed to improve the HRR singular solution under ideal plane strain conditions in power-law hardening solids with the the second A(2) being considered to take into account of the in-plane constraint effect, and the J-T-z singular solution has been obtained for three-dimensional (3D) cracked body by introducing the out-of-plane stress constraint factor T-z. Here a higher order J-T-z-A(T) solution is developed on the basis of the J-T-z and J-A(2) solutions and validated against comprehensive 3D finite element (FE) analyses for specimens with through-thickness, surface, embedded and corner cracks. It is shown that better agreements are obtained between the higher order J-T-z-A(T) solution and 3D FE results in all simulated conditions than previously available two- or three-parameter solutions. For specimens of high in-plane constraint, such as the single-edge cracked tension specimen, compact specimen and single-edge-notched bending specimen under three-point bending, the J-T-z leading singular solution itself shows sufficient accuracy. This universal characterization of crack border stress fields confirms that the developed J-T-z-A(T) solution combines the advantages of the J-T-z and J-A(2) solutions, which can service as a solid foundation of elastic-plastic fracture mechanics.
ISSN号:0013-7944
是否译文:否
发表时间:2019-12-01
合写作者:Cui, Pengfei
通讯作者:郭万林