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Mathematical modelling of the microstructure and texture changes during hot tandem rolling of AA5182 and AA5052 aluminum alloys.

机译:AA5182和AA5052铝合金热连轧过程中微观组织和织构变化的数学模型。

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摘要

A mathematical model to predict the through-thickness microstructure and texture changes during hot tandem rolling has been developed for two commercially significant aluminum alloys--AA5182 and AA5052. The model includes a plasticity component to model the temperature and deformation during rolling as well as an interpass component to model the microstructure, texture and temperature changes which occur in the strip between the rolling passes.;The plasticity model was developed using a commercial finite element package DEFORM;The interstand model includes semi-empirical equations describing the microstructure (percent recrystallization and recrystallized grain size) and texture changes occurring in the strip between the rolling passes. The interstand model also includes a temperature module to predict the through-thickness temperature distribution in the strip based on the one-dimensional heat conduction equation which is solved by a finite difference method.;The semi-empirical equations used in the interstand model were developed using experimental data for the two alloys. The experimental programme was carried out at Alcan International's Banbury and Kingston Laboratories, as well as at the Atomic Energy of Canada Limited Chalk River Laboratories. The experimental programme involved plane strain compression testing industrial rolled samples of AA5182 and AA5052 aluminum alloys based on a test matrix which covered similar temperature, strain and strain rate conditions as those seen in industrial hot tandem rolling. The samples were given a single deformation and then quenched immediately to preserve the as-deformed structure. The samples were then heat-treated in a salt bath for various lengths of time and the percent recrystallization, recrystallized grain size and texture changes during recrystallization were measured. A temperature compensated time parameter was used to convert the isothermal recrystallization and texture kinetics to non-isothermal applications.;Validation of the model using industrial data and samples indicated that it gave reasonable predictions for the temperature, grain size and volume fraction of some of the deformation texture components after recrystallization was completed. However, the model tended to over-estimate the mill loads in the last stands for both the AA5182 and AA5052 alloys and tended to underestimate the amount of cube and S texture in the recrystallized strip.;A sensitivity analysis of the process parameters indicated that both the microstructure and texture were most sensitive to the rolling temperature. Indicating the need for good control of temperature during rolling operations as well as accurate temperature predictions for process modelling activities.
机译:已经针对两种具有商业意义的铝合金-AA5182和AA5052开发了一种数学模型来预测热连轧过程中的贯穿厚度组织和织构变化。该模型包括用于模拟轧制过程中温度和变形的塑性成分,以及用于模拟轧制道次之间带材中发生的组织,织构和温度变化的中间道次成分。;可塑性模型是使用商业有限元开发的机架间模型包括半经验方程式,描述了轧制道次之间带材中的微观组织(再结晶百分比和再结晶晶粒尺寸)和织构变化。 Interstand模型还包括一个温度模块,该模块根据一维热传导方程式(通过有限差分法求解)来预测带材中的整个厚度温度分布。;开发了Interstand模型中使用的半经验方程式使用两种合金的实验数据。该实验程序是在加拿大铝业公司(Alcan International)的班伯里(Banbury)和金斯敦(Kingston)实验室以及加拿大原子能有限公司粉笔河实验室(Calk River Laboratories)进行的。实验程序涉及基于测试基质的平面应变压缩测试AA5182和AA5052铝合金的工业轧制样品,其覆盖的温度,应变和应变速率条件与工业热连轧中所见的相似。样品进行一次变形,然后立即淬火以保留变形后的结构。然后将样品在盐浴中热处理各种时间长度,并测量重结晶百分比,重结晶晶粒尺寸和重结晶过程中的织构变化。使用温度补偿的时间参数将等温再结晶和织构动力学转换为非等温应用。;使用工业数据和样品对模型进行的验证表明,该模型对某些合金的温度,晶粒尺寸和体积分数给出了合理的预测。重结晶完成后的变形织构成分。但是,该模型倾向于高估AA5182和AA5052合金的最后轧机负荷,并倾向于低估重结晶带钢中的立方和S织构量。显微组织和织构对轧制温度最敏感。表示需要在轧制过程中对温度进行良好的控制,以及对过程建模活动进行准确的温度预测。

著录项

  • 作者

    Wells, Mary A.;

  • 作者单位

    The University of British Columbia (Canada).;

  • 授予单位 The University of British Columbia (Canada).;
  • 学科 Engineering Metallurgy.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 1996
  • 页码 265 p.
  • 总页数 265
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 冶金工业;工程材料学;
  • 关键词

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