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基于3D热加工图的节镍型高锰奥氏体不锈钢热变形特性研究
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广西大学 资源环境与材料学院

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中图分类号:

TG335.11

基金项目:

国家自然科学基金(51661004);广西创新驱动项目(桂科AA18242003-3);广西有色金属及特色材料加工重点实验室项目(GXYSSF1809)


Hot deformation characterization of low-Ni austenite stainless steel with high Mn through 3D processing map
Author:
Affiliation:

1.College of resources, environment, and materials, Guangxi University,;2.College of resources, environment and materials,Guangxi University

Fund Project:

National Natural Science Foundation of China(51661004); Guangxi Innovation-driven Project(GuikeAA18242003-3); Guangxi Key Laboratory of Processing for Non-ferrous Metal and Featured Materials Project(GXYSSF1809)

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    摘要:

    为优化较大变形量节镍型奥氏体不锈钢热轧工艺,在GLEEBLE-3500热力模拟试验机上对1Cr14Mn10Ni1.5不锈钢进行了温度950-1250℃,应变速率0.01-5.0s-1,应变为0.36、0.69和0.92的等温热压缩实验。建立了基于应变影响三维热加工图,使用Arrhenius型本构方程计算出了三种应变下的热激活能,联系微观组织分析了热加工图受应变影响的演变行为。结果表明:当真应变从0.36增加到0.69和0.92时,热激活能Q从501kJ/mol分别下降到427kJ/mol和424.86kJ/mol,说明在0.36-0.69应变区间内,位错引入和生成的速度低于位错运动和湮灭的速度;热加工图显示,峰值区域和谷值区域会随着应变的增加向低温和高速方向移动,这是由于应变输入的总能量增加导致的;该实验钢在热加工图中存在三个峰值区域,0.69真应变,1175-1225℃,1.0-5.0s-1的条件下能够达到最高38%的热加工功率,这与高应变速率下的温升有关;随着应变增加到0.69和0.92,失稳区域的面积先增大后减小;应力应变曲线和微观组织证明,高功率的区域的软化机制为动态再结晶,失稳区域表现为不连续动态再结晶和动态回复。

    Abstract:

    To optimize the process of hot rolling for nickel-section austenitic stainless steel with large deformation, the isothermal hot compression tests of 1Cr14Mn10Ni1.5 stainless steel were carried out on Gleeble-3500 thermal simulation system at temperatures of 950 - 1250℃, strain rates of 0.01-5.0 s-1, and strains of 0.36, 0.69 and 0.92. The 3D hot processing maps were established based on the strain effect. The thermal activation energies under three strains were calculated by using the Arrhenius type constitutive equation. The evolution behavior of the hot processing map under the strain effect was analyzed by combining it with the microstructure. The results show that when the true strain increases from 0.36 to 0.69 and 0.92, the thermal activation energy Q decreases respectively from 501kJ/mol to 427kJ/mol and 424.86kJ/mol, indicating that the rate of dislocation multiplication and generation is lower than the rate of dislocation movement and annihilation in the strain range of 0.36-0.69. The hot processing map shows that the peak and valley regions change with the increasing strain, mainly in the direction of low temperature and high speed, which is caused by the increase of the total energy of strain input. There are three peak regions in the hot processing map of the experimental steel, only 0.69 strain, under the conditions of 1175-1225℃, 1.0-5.0 s-1 can reach the maximum processing efficiency of 38%, which is related to the temperature rise at high speed. As the strain increases to 0.69 and 0.92, the instability region extends first and then shrinks. The stress-strain curves and microstructure show that the softening mechanism of the high efficiency region is dynamic recrystallization(DRX), while the unstable region is characterized by discontinuous dynamic recrystallization(DDRX) and dynamic recovery(DRV).

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丁浩晨,赵艳君,何玉花,秦瑞雪,郑义,郭宇轩,邓永杰.基于3D热加工图的节镍型高锰奥氏体不锈钢热变形特性研究[J].稀有金属材料与工程,2022,51(7):2608~2616.[Ding Haochen, zhao yanjun, He Yuhua, Qin Ruixue, Zheng Yi, Guo Yuxuan, Deng Yongjie. Hot deformation characterization of low-Ni austenite stainless steel with high Mn through 3D processing map[J]. Rare Metal Materials and Engineering,2022,51(7):2608~2616.]
DOI:10.12442/j. issn.1002-185X. E20210531

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  • 收稿日期:2021-06-22
  • 最后修改日期:2021-08-01
  • 录用日期:2021-08-06
  • 在线发布日期: 2022-07-29
  • 出版日期: 2022-07-27