For the quenched martensite (M) structure of steel 45, T8 and T12, the uniaxial warm compression tests were investigated by a Gleeble 3500 machine within the temperature between 550 ℃ and 700 ℃ and the strain rate from 1.0 s-1 to 0.001 s-1. The stress-strain curves of M structure in above three steels were measured. The influences of carbon content, deformation temperature and strain rate on flow behavior were studied comparatively. The test results show that the flow stress of M structure decreases with increasing of deformation temperature or decreasing of strain rate. Because the activation energy of self-diffusion decreases with increasing carbon content, the more the carbon content, the faster the rate of recovery and recrystallizations and the lower flow stress,which makes flow stress of medium carbon steel M structure higher than that of high carbon steel, and the sequence of flow stress in steels is that 45 steel is the highest, T12 steel is the lowest and T8 steel is among them.
|
[1]赵新,荆天辅,高聿为,等. 板条马氏体大变形轧制工艺的晶粒细化机制[J]. 钢铁研究学报,2004,16(6): 69-73. Zhao X,Jing T F,Gao Y W,et al. Grain-refining mechanism of severe rolling to lath martensite[J]. Journal of Iron and Steel Research,2004,16(6): 69-73. [2]李宭,荆天辅,李鸿标,等. 不同变形量下一种低碳钢马氏体温变形的组织演变[J]. 金属材料研究,2010,(2): 1-5. Li Q,Jing T F,Li H B,et al. Microstructure evolution of low carbon steel under varied reduction prepared by warm deformation with martensite starting structure[J]. Research on Metallic Materials,2010,(2): 1-5. [3]周继锋,荆天辅,高聿为,等. 中碳钢马氏体组织温塑性变形力学行为[J]. 钢铁研究学报,2007,19(3): 45-48. Zhou J F,Jing T F,Gao Y W,et al. Mechanical behavior of medium carbon martensite during warm plastic deformation[J]. Journal of Iron and Steel Research,2007,19(3): 45-48. [4]张治民,方敏. 60Si2Mn温变形力学行为研究[J]. 材料科学与工艺,1998,6(1): 86-89. Zhang Z M,Fang M. Investigation of warm-deformation mechanical behavior of steel 60Si2Mn[J]. Materials Science and Technology,1998,6(1): 86-89. [5]王书强. 几种不同含碳量碳钢的组织对温变形行为的影响[D]. 秦皇岛:燕山大学,2008. Wang S Q. Effect of microstructure on warm deformation behavior of several carbon steels with different carbon contents[D]. Qinhuangdao:Yanshan University,2008. [6]赵品,谢辅洲,孙文山. 材料科学基础教程[M]. 哈尔滨: 哈尔滨工业大学出版社,1998. Zhao P,Xie F Z,Sun W S. Base Course of Material Science[M]. Harbin: Harbin Institute of Technology Press,1998. [7]张艳,党紫九. 影响流变应力曲线测试的因素[J].北京科技大学学报,1997,19(1): 117-121. Zhang Y,Dang Z J . Influence factors of measuring stress-strain curves[J]. Journal of University of Science and Technology Beijing,1997,19(1): 117-121. [8]东赟鹏,王超渊,宋晓俊,等. GH5188合金流变行为研究[J]. 锻压技术,2013,38(6): 116-121. Dong Y P,Wang C Y,Song X J,et al. Study on plastic deformation behavior of GH5188 superalloy[J]. Forging & Stamping Technology,2013,38(6): 116-121. [9]姚可夫,钱滨,石伟,等. 马氏体回火过程中组织转变量预测的实验研究[J]. 金属学报,2003,39(8): 892-896.Yao K F,Qian B,Shi W,et al. Experimental study and numerical prediction of phase transformation evolution during tempering process of martensite[J]. Acta Metallurgica Sinica,2003,39(8): 892-896. [10]俞德钢. 钢的强韧化理论与设计[M]. 上海: 上海交通大学出版社,1990.Yu D G. The Toughening Theory and Design of Steel[M]. Shanghai: Shanghai Jiao Tong University Press,1990. [11]Beladi H,Hodgson P D. Effect of carbon content on the recrystallization kinetics of Nb-steels[J]. Scripta Materialia,2007,(56): 1059-1062. [12]Wray P J. Effect of carbon content on the plastic flow of plain carbon steels at elevated temperatures[J]. Metallurgical Transaction A,1982,(13): 125-134.
|