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VISCOPLASTIC SOLUTION TO FIELD AT STEADILY PROPAGATING CRACK TIP IN LINEAR- HARDENING MATERIALS
作者姓名:贾斌  王振清  李永东  梁文彦
作者单位:School of Astronautics Harbin Institute of Technology Harbin 150001,P. R. China,Architectural Engineering College Harbin Engineering University,Harbin 150001,P. R. China,Mechanical Engineering Department Armored Forces Engineering Institute,Beijing 100072,P. R. China,Architectural Engineering College Harbin Engineering University,Harbin 150001,P. R. China
基金项目:Project supported by the Doctor Science Research Startup Foundation of Harbin Institute of Technology (No.01502485)
摘    要:An elastic-viscoplastic constitutive model was adopted to analyze asymptotically the tip-field of moving crack in linear-hardening materials under plane strain condition. Under the assumption that the artificial viscosity coefficient was in inverse proportion to power law of the rate of effective plastic strain, it is obtained that stress and strain both possess power law singularity and the singularity exponent is uniquely determined by the power law exponent of the rate of effective plastic strain. Variations of zoning structure according to each material parameter were discussed by means of numerical computation for the tip-field of mode Ⅱ dynamic propagating crack, which show that the structure of crack tip field is dominated by hardening coefficient rather than viscosity coefficient. The secondary plastic zone can be ignored for weak hardening materials while the secondary plastic zone and the secondary elastic zone both have important influence on crack tip field for strong hardening materials. The dynamic solution approaches to the corresponding quasi-static solution when the crack moving speed goes to zero, and further approaches to the HR (Hui-Riedel) solution when the hardening coefficient is equal to zero.

关 键 词:粘塑性解法  类静态传播  动态传播  线性硬化  弹性-粘塑性材料
收稿时间:2004-06-23
修稿时间:2006-01-11

Viscoplastic solution to field at steadily propagating crack tip in linear-hardening materials
Associate Professor Bin Jia Doctor,Zhen-qing Wang,Yong-dong Li,Wen-yan Liang.VISCOPLASTIC SOLUTION TO FIELD AT STEADILY PROPAGATING CRACK TIP IN LINEAR- HARDENING MATERIALS[J].Applied Mathematics and Mechanics(English Edition),2006,27(4):527-533.
Authors:Associate Professor Bin Jia Doctor  Zhen-qing Wang  Yong-dong Li  Wen-yan Liang
Institution:1. School of Astronautics, Harbin Institute of Technology, Harbin 150001, P. R. China
2. Architectural Engineering College, Harbin Engineering University, Harbin 150001, P. R. China
3. Mechanical Engineering Department, Armored Forces Engineering Institute, Beijing 100072, P. R. China
Abstract:An elastic-viscoplastic constitutive model was adopted to analyze asymptotically the tip-field of moving crack in linear-hardening materials under plane strain condition. Under the assumption that the artificial viscosity coefficient was in inverse proportion to power law of the rate of effective plastic strain, it is obtained that stress and strain both possess power law singularity and the singularity exponent is uniquely determined by the power law exponent of the rate of effective plastic strain. Variations of zoning structure according to each material parameter were discussed by means of numerical computation for the tip-field of mode II dynamic propagating crack, which show that the structure of crack tip field is dominated by hardening coefficient rather than viscosity coefficient. The secondary plastic zone can be ignored for weak hardening materials while the secondary plastic zone and the secondary elastic zone both have important influence on crack tip field for strong hardening materials. The dynamic solution approaches to the corresponding quasi-static solution when the crack moving speed goes to zero, and further approaches to the HR (Hui-Riedel) solution when the hardening coefficient is equal to zero. Project supported by the Doctor Science Research Startup Foundation of Harbin Institute of Technology (No.01502485)
Keywords:quasi-static propagation  dynamic propagation  linear-hardening materials  elastic-viscoplastic materials  crack-tip field
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