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34CrNi3Mo在热机械变形过程中的变形行为与本构模型

Deformation Behavior and Constitutive Model of 34CrNi3Mo during Thermo-Mechanical Deformation Process.

作者信息

Jia Xiang-Dong, Zhou Ying, Wang Yi-Ning

机构信息

College of Mechanical and Electrical Engineering, Nanjing Forestry University, Nanjing 210037, China.

出版信息

Materials (Basel). 2022 Jul 28;15(15):5220. doi: 10.3390/ma15155220.

Abstract

With higher creep strength and heat resistance, 34CrNi3Mo has been widely used in the production of engine rotors, steam turbine impellers, and turbine blades. To investigate the hot deformation behaviors of 34CrNi3Mo steel, hot compressive tests were conducted on a Gleeble-3500 thermomechanical simulator, under the temperature range of 1073 K-1373 K and strain rate ranges of 0.1 s-20 s. The results show that the flow stress of 34CrNi3Mo steel under high temperatures is greatly influenced by the deformation temperature and strain rate, and it is the result of the interaction between strain hardening, dynamic recovery, and recrystallization. Under the same deformation rate, as the deformation temperature increases, the softening effect of dynamic recrystallization and dynamic recovery gradually increases, and the flow stress gradually decreases. Under the same deformation temperature, with the increase of strain rate, the influence of strain hardening on 34CrNi3Mo steel is gradually in power, and the flow stress gradually increases. To predict the flow stress of 34CrNi3Mo steel accurately, a modified Arrhenius-type constitutive model considering the effects of strain, temperature, and strain rate at the same time was made based on the experiment data. On this basis, the evolution law of deformation activation and instability characteristics of 34CrNi3Mo steel were investigated, and the processing map of 34CrNi3Mo steel was established. The formability of 34CrNi3Mo steel under high temperature deformation was revealed, which provided a theoretical foundation of the equation of reasonable hot working process.

摘要

34CrNi3Mo钢具有较高的蠕变强度和耐热性,已广泛应用于发动机转子、汽轮机叶轮和涡轮叶片的生产。为了研究34CrNi3Mo钢的热变形行为,在Gleeble-3500热机械模拟器上进行了热压缩试验,试验温度范围为1073 K至1373 K,应变速率范围为0.1 s至20 s。结果表明,34CrNi3Mo钢在高温下的流变应力受变形温度和应变速率的影响较大,是应变硬化、动态回复和再结晶相互作用的结果。在相同的变形速率下,随着变形温度的升高,动态再结晶和动态回复的软化效果逐渐增强,流变应力逐渐降低。在相同的变形温度下,随着应变速率的增加,应变硬化对34CrNi3Mo钢的影响逐渐增强,流变应力逐渐增大。为了准确预测34CrNi3Mo钢的流变应力,基于实验数据建立了同时考虑应变、温度和应变速率影响的修正Arrhenius型本构模型。在此基础上,研究了34CrNi3Mo钢的变形激活演化规律和失稳特征,建立了34CrNi3Mo钢的加工图。揭示了34CrNi3Mo钢在高温变形下的成形性,为合理的热加工工艺方程提供了理论基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db29/9369858/0a6149003556/materials-15-05220-g001.jpg

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