WEI TianTian, TANG XueSong. ANALYTICAL SOLUTION AND APPLICATION OF RESTRAINING STRESS ZONE FATIGUE CRACK MODEL WITH COUPLING THE MACROSCOPIC AND MICROSCOPIC EFFECTS. [J]. 38(3):611-617(2016)
DOI:
WEI TianTian, TANG XueSong. ANALYTICAL SOLUTION AND APPLICATION OF RESTRAINING STRESS ZONE FATIGUE CRACK MODEL WITH COUPLING THE MACROSCOPIC AND MICROSCOPIC EFFECTS. [J]. 38(3):611-617(2016) DOI: 10.16579/j.issn.1001.9669.2016.03.033.
ANALYTICAL SOLUTION AND APPLICATION OF RESTRAINING STRESS ZONE FATIGUE CRACK MODEL WITH COUPLING THE MACROSCOPIC AND MICROSCOPIC EFFECTS
Material damage state can be depicted by a restraining stress zone. A trans-scale fatigue crack model with coupling the macro / micro effects is developed. The proposed model can describe the whole process of fatigue failure from a microflaw( fatigue source) to the final fracture. The distribution of restraining stresses depends on the material damage state in the restraining stress zone. A linear distribution of restraining stresses is assumed. Under the remotely applied uniform tension,the trans-scale crack model is analytically solved using Muskhelishivili approach. Analytical expressions of crack opening displacement and trans-scale strain energy density factor are obtained. The trans-scale strain energy density factor serves as the controlling parameter of fatigue crack growth from micro-scale to macro-scale. Numerical simulations for the whole process of fatigue failure are completed. By application of the present model,the experimental S-N curves of LC4 aluminum alloy plates under the different loading conditions are accurately re-produced. The scatter of fatigue test data owing to the microscopic effects is also reflected by the present model. Moreover,the influences of microscopic effects on the fatigue crack growth are also discussed.
关键词
S-N曲线疲劳裂纹扩展跨尺度裂纹模型约束应力区应变能密度因子微观效应
Keywords
S-N CurveFatigue crack growthTrans-scale crack modelRestraining stress zoneStrain energy density factorMicroscopic effect
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