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渗碳工艺参数对常见渗碳钢晶粒粗化行为的影响 被引量:6

Effect of carburizing process parameters on austenitic grain coarsening behavior of common carburizing steel
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摘要 基于真空低压渗碳炉,分析了不同渗碳工艺参数对常见渗碳钢晶粒粗化行为的影响规律,并对实验结果数据进行了处理和线性拟合。结果表明:20钢渗碳温度920℃较为适宜,20Cr钢较适宜的渗碳温度为950℃,20CrMnTi钢在980℃下保温较长时间奥氏体晶粒仍可以保持细小,可以选择较高温度渗碳;20钢、20Cr钢和20CrMnTi钢的奥氏体晶粒长大规律符合Beck关系式;奥氏体晶粒随加热温度的升高呈指数形式长大,温度越高,晶粒生长指数越大。在一定含碳量范围内,随着奥氏体中含碳量的增加,晶粒长大倾向增加;当含碳量超过一定限度后,奥氏体晶粒长大倾向减小;在不同碳浓度下,碳含量对奥氏体晶粒尺寸的影响方式不同。 Basing on the low pressure carburizing furnace,effect of different carburizing parameters on the grain coarsening behavior of some common carburizing steel was analyzed,and the experimental results were processed and linear fitting. The results show that the optimum carburizing temperatures of 20 and 20 Cr steels are 920 ℃ and 950 ℃,respectively. The austenite grain size of 20 CrMnTi steel can be kept fine at 980 ℃ for a long time,so a higher carburizing temperature can be chosen in this case. The austenite grain growth law with the isothermal time of the 20,20 Cr and 20 CrMnTi steels is in accordance with the Beck relation. The austenite grain size increases exponentially with the increase of heating temperature,and the higher the temperature is,the larger the grain growth index is. In a certain range of carbon content,with the increase of carbon content in austenite,the grain growth tendency increases,but when the carbon content exceeds a certain limit,the tendency of austenite grain growth decreases. Under different carbon concentrations,the effect of carbon content on the grain size of the austenite is different.
作者 王昊杰 郝浩腾 王昭东 田勇 李勇 李家栋 韩毅 WANG Hao-jie HAO Hao-teng WANG Zhao-dong TIAN Yong LI Yong LI Jia-dong HAN Yi(State Key Laboratory of Rolling and Automation, Northeastern University, Shenyang 110819, China)
出处 《材料热处理学报》 EI CAS CSCD 北大核心 2017年第3期177-185,共9页 Transactions of Materials and Heat Treatment
基金 国家自然科学基金面上项目(51474064) 国家自然科学基金(51234002) 国家重点研发计划项目(2016YFB0300605) 中央高校基本科研业务费专项资金资助(N140703002)
关键词 真空渗碳 工艺参数 渗碳钢 晶粒粗化 vacuum carburizing process parameters carburizing steel grain coarsening
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