Modeling of Dynamic Recrystallization Kinetics of a High Strength Low Alloy Steel During Hot Rolling

IF 1.5 4区 工程技术 Q3 ENGINEERING, MECHANICAL
B. C. Zhao, Y. P. Zhang, X. Jin, W. J. Zhen
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引用次数: 0

Abstract

A Gleeble thermal–mechanical simulator equipped with an induction heating system was employed to perform single pass compression test to study the dynamic recrystallization behavior of a high-strength low-alloy steel in a wide range of temperatures ( 900℃-1050℃) and strain rates (0.1 s−1-10 s−1). Based on the flow behavior of the tested steel, a new method has been proposed to determine the stress or strain for the onset of dynamic recrystallization. The resultant stresses or strains are compared with the ones determined by using the previous method to confirm the validity of the new method. Moreover, the stress or strain for the onset of dynamic recrystallization is modeled using Zener-Hollomon parameter. With the assistant of the process parameters, temperature, strain and stress, the activation energy has been determined. Finally, the dynamic recrystallization kinetics model is constructed and the validity is tested.

Abstract Image

高强度低合金钢热轧过程中的动态再结晶动力学建模
采用配备感应加热系统的Gleeble热机械模拟器进行单道次压缩试验,研究了高强度低合金钢在900℃~ 1050℃和0.1 s−1 ~ 10 s−1应变速率下的动态再结晶行为。根据被试钢的流动特性,提出了一种确定动态再结晶开始时的应力或应变的新方法。将所得的应力或应变与以前的方法进行了比较,以证实新方法的有效性。此外,采用Zener-Hollomon参数对动态再结晶开始时的应力或应变进行了建模。在工艺参数、温度、应变和应力的辅助下,确定了活化能。最后,建立了动态再结晶动力学模型,并验证了模型的有效性。
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来源期刊
Experimental Techniques
Experimental Techniques 工程技术-材料科学:表征与测试
CiteScore
3.50
自引率
6.20%
发文量
88
审稿时长
5.2 months
期刊介绍: Experimental Techniques is a bimonthly interdisciplinary publication of the Society for Experimental Mechanics focusing on the development, application and tutorial of experimental mechanics techniques. The purpose for Experimental Techniques is to promote pedagogical, technical and practical advancements in experimental mechanics while supporting the Society''s mission and commitment to interdisciplinary application, research and development, education, and active promotion of experimental methods to: - Increase the knowledge of physical phenomena - Further the understanding of the behavior of materials, structures, and systems - Provide the necessary physical observations necessary to improve and assess new analytical and computational approaches.
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