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镍基单晶合金多轴非比例加载低周疲劳单胞模型
引用本文:丁智平,王腾飞,李明,陈吉平.镍基单晶合金多轴非比例加载低周疲劳单胞模型[J].材料研究学报,2011(5):455-463.
作者姓名:丁智平  王腾飞  李明  陈吉平
作者单位:湖南工业大学机械工程学院
基金项目:国家自然科学基金50875080;湖南省重点学科建设项目;湖南工业大学研究生创新基金CX1109资助~~
摘    要:在680和850℃下对DD3镍基单晶合金进行多轴非比例加载低周疲劳试验,结果表明等效应变范围△ε_e、试验温度、等效应力范围△σ_e对单晶合金的低周疲劳寿命有显著影响。基于能量耗散理论,引入参量k表征多轴非比例加载对疲劳寿命的影响,构造循环塑性应变能作为损伤参量,建立镍基单晶合金低周疲劳寿命预测模型。参量k与循环寿命之...

关 键 词:金属材料  低周疲劳  单晶合金  多轴非比例加载  单胞模型  寿命预测

Low Cycle Fatigue Unit Cell Model for Single Crystal Nickel-base Superalloy under Multiaxial Non-proportional Loading
DING Zhiping WANG Tengfei LI Ming CHEN Jiping.Low Cycle Fatigue Unit Cell Model for Single Crystal Nickel-base Superalloy under Multiaxial Non-proportional Loading[J].Chinese Journal of Materials Research,2011(5):455-463.
Authors:DING Zhiping WANG Tengfei LI Ming CHEN Jiping
Affiliation:DING Zhiping(**) WANG Tengfei LI Ming CHEN Jiping (School of Mechanical Engineering,Hunan University of Technology,Zhuzhou 412007)
Abstract:Low cycle fatigue tests of the single crystal nickel-based superalloy DD3 were conducted under multiaxial non-proportional loading at 680 and 850℃respectively.The results show that some factors affect low cycle fatigue life significantly.Based on energy dissipation theory,a low cycle fatigue life prediction model for the single crystal superalloy was proposed by using cyclic plasticity strain energy as a parameter.According to the micro structure feature,aγ/γ’ two-phase unit cell finite element model was established,and its cyclic stress-strain was simulated.Calculation results of the macro and the micro finite element model,and low cycle fatigue test data at 680 and 850℃were applied to fit the low cycle fatigue life model by multiple linear regression analysis.The results show that the accuracy of the unit cell model is better than that of the macro model significantly,and all test data of two kinds of temperatures fall into the factor of 1.6 and 2.0 scatter band,respectively.
Keywords:metallic materials  low cycle fatigue  single crystal superalloy  multiaxial non-proportional loading  unit cell model  life prediction
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