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首页> 外文期刊>Journal of Materials Science >Cellular automata modeling of the kinetics of static recrystallization during the post-hydroforming annealing of steel tube
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Cellular automata modeling of the kinetics of static recrystallization during the post-hydroforming annealing of steel tube

机译:钢管后液压成形退火过程中静电重结晶动力学的蜂窝自动机

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摘要

A modeling setup based on the cellular automata (CA) method was developed to model the kinetics of static recrystallization (SRX) in hydroformed steel tubes undergoing the annealing process. In addition, the impact of multiaxial deformations on the kinetics of SRX within the hydroformed steel tube was investigated. First, hoop and axial strains developing at the pole of the steel tube during hydroforming were obtained from the digital image correlation measurements. Then, an exact analytical solution was employed to calculate the corresponding hoop and axial stresses at the pole of the bulged tube. Using these biaxial stress-strain curves, the stored energy was calculated for the hydroformed tube specimen. Second, the actual grain topology and crystallographic orientation of grains in the deformed specimen were obtained with the electron backscatter diffraction. Third, the calculated stored energy as well as the microstructural and crystallographic data was incorporated into the CA model as initial conditions to predict the kinetics of SRX in the specimen during annealing. Finally, to assess the accuracy of the CA model, experimental and predicted results were compared in terms of grain topology data including the grain size and aspect ratio distributions, as well as the rate of recrystallization during annealing. A reasonable agreement between the experimental and CA predictions in partial and fully recrystallized specimens was achieved inferring the validity of the developed algorithm and the modeling setup to predict the SRX kinetics during the post-tube hydroforming annealing process.
机译:开发了一种基于蜂窝自动机(CA)方法的建模设置,以模拟经历退火工艺的液压成型钢管中的静态再结晶(SRX)的动力学。此外,研究了对液压成形钢管内SRX动力学对SRX动力学的影响。首先,从数字图像相关测量获得液压成形过程中钢管杆处的箍和轴向菌株。然后,采用精确的分析解决方案来计算凸出管的杆处的相应箍和轴向应力。使用这些双轴应力 - 应变曲线,计算液压成型管样品的储存能量。其次,用电子反向散射衍射获得变形样品中的晶粒的实际颗粒拓扑和晶体取向。第三,计算出的储存能量以及微观结构和晶体数据被掺入CA模型中作为初始条件,以预测退火期间样品中SRX的动力学。最后,为了评估CA模型的准确性,在包括晶粒尺寸和纵横比分布的颗粒拓扑数据中,以及退火期间重结晶速率进行比较实验和预测结果。达到部分和完全重结晶标本的实验和CA预测之间的合理一致性地推断出发达算法的有效性和建模设置,以预测管道后液压成型退火过程中的SRX动力学。

著录项

  • 来源
    《Journal of Materials Science》 |2020年第18期|共20页
  • 作者单位

    Ohio State Univ Dept Integrated Syst Engn 210 Baker Syst 1971 Neil Ave Columbus OH 43210 USA;

    Ohio State Univ Dept Integrated Syst Engn 210 Baker Syst 1971 Neil Ave Columbus OH 43210 USA;

    Ohio State Univ Dept Integrated Syst Engn 210 Baker Syst 1971 Neil Ave Columbus OH 43210 USA;

    Pusan Natl Univ Dept Mech Engn 2 Busandaehak Ro 63beon Gil Busan 46241 South Korea;

    Ohio State Univ Dept Integrated Syst Engn 210 Baker Syst 1971 Neil Ave Columbus OH 43210 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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