Analysis on the Key Parameters to Predict Flow Stress during Ausforming in a High-Carbon Bainitic Steel

被引:0
|
作者
Wang, Lifan [1 ]
Hu, Haijiang [1 ]
Wang, Wei [2 ]
He, Ping [1 ]
Li, Zhongbo [3 ]
Xu, Guang [1 ]
机构
[1] Wuhan Univ Sci & Technol, State Key Lab Refractories & Met, Wuhan 430081, Peoples R China
[2] Baosteel Res Inst, 889 Fujin Rd, Shanghai 201900, Peoples R China
[3] Nanyang Hanye Special Steel Co Ltd, Nanyang 474500, Peoples R China
关键词
ausforming; stress-strain; dislocations; modeling; deformation temperature; WORK-HARDENING BEHAVIOR; STRAIN; DEFORMATION; KINETICS; MODEL; TEMPERATURES; METALS;
D O I
10.3390/met13091526
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Since flow stress is an important parameter in the processing and application of metallic materials, it is necessary to trace the flow stress during austenite deformation. Thermal compression deformation of austenite in a high-strength bainitic steel was conducted using a Gleeble-3500 thermomechanical simulator, within the deformation temperature range of 400 degrees C similar to 900 degrees C. By analyzing the stress-strain curves and strain-hardening exponent, the effects of strain hardening and dynamic recovery on the dislocation density of the material during the thermal processing were considered in the present work. Based on the general form of the Kocks-Mecking-Estrin (KME) model, the effects of deformation temperature and strain on the key parameters of the model were clarified. Differing from other work which commonly terms m (strain rate sensitivity exponent) and k(2) (dimensionless parameters for dynamic recovery) as constants, the current models consider the quantitative relationship between key parameters and deformation temperature and strain. The results show that m is an exponential function related to temperature and strain, which decreases with the increase in strain. Meanwhile, k(2) is a temperature-dependent polynomial function that increases as the deformation temperature increases. Finally, a modified constitutive KME model was proposed to predict the austenitic plastic stress with strain. Using established m-epsilon and k(2)-T models, the predicted curves are in good agreement with the experimental measurements.
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页数:11
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