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20CrMnTi结构钢热变形行为及其数学模型 被引量:25

The Hot Deformation Behavior and Dynamic Recrystallization Model of 20CrMnTi Structural Steel
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摘要 利用Gleeble-1500热模拟实验机研究了20CrMnTi结构钢在温度为1223~1243K,变形速率为0.01~5s-1条件下的热变形行为.通过奥氏体再结晶动力学回归计算了20CrMnTi的形变激活能,以及峰值应力与变形温度、应变速率之间的关系;提出采用加工硬化率-应变(θ-ε)图可以准确地判断该钢发生动态软化的类型,并可以确定动态再结晶开始和结束以及最大软化率时所对应的应变.给出了反映该钢动态再结晶进行过程的动态再结晶状态图,以及动态再结晶开始时间和完全再结晶时间与形变温度的关系图,并回归出了20CrMnTi钢的再结晶动力学方程. The hot deformation behavior of 20CrMnTi steel was studied with a compression test by using Gleeble 1500 simulator at the temperature of 1 223~1 243 K and strain rate of 0.01~5 s^(-1). The deformation activation energy, the relationship between the peak stress, σ_p, with the deformed temperature and strain rate were calculated. A method was developed to determine the critical strain (ε_c) for DRX initiation, the strain for maximum softening rate (ε~*) and the steady strain (ε_s) by using the plot of work-hardening rate versus strain (θ-ε) curves. The dynamic recrystallization (DRX) state, the relationship of the initiation time and full DRX time with the deformed temperature were analyzed to access the DRX progress with different hot-working condition. The mathematical model of DRX kinetics of 20CrMnTi was (obtained).
作者 张斌 张鸿冰
出处 《上海交通大学学报》 EI CAS CSCD 北大核心 2003年第12期1826-1830,共5页 Journal of Shanghai Jiaotong University
基金 上海市高等学校科学技术发展基金重点项目(03HZ01) 国家自然科学基金资助项目(50275094)
关键词 结构钢 再结晶动力学 最大软化率 动力学方程 structural steels recrystallizaiton kinetics maximum softening rate kinetic equation
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参考文献7

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二级参考文献7

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