1050A铝合金径向剪切轧制特征及性能演变研究

Yu. V. Gamin, A. Koshmin, A. Dolbachev
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引用次数: 0

摘要

本研究的主要目的是通过有限元建模(FEM)和实验验证,分析径向剪切轧制(RSR)模式对1050A结构和性能的影响。得到直径为60 mm的铸锭,在不同的轧制条件下轧制成直径为14 mm的棒材(总伸长率µ= 18.4)。研究了轧制后棒材组织和力学性能的演变。结果表明,在RSR过程中,可变形体体积内的温度-速度和变形参数发生了不均匀变化,这决定了梯度螺旋结构的形成。利用有限元方法可以很好地理解随RSR方法参数变化的微观组织演变和性能过程。在有限元模拟的基础上,得到了不同温度(T=25 ~ 350℃)下变形体体积内温度和应变率的变化规律。根据所选择的温度-速度参数,可以获得不同的机械性能组合(UTS ~ 94至20 MPa;YS ~ 88可达110 MPa;E = 1至43.5%)。1050A合金在各种状态下的RSR棒强度均显著高于工业棒材在热压条件下的强度,显示了RSR工艺作为控制铝合金塑性变形和获得长棒材的有效方法的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
study of radial-shear rolling features and properties evolution of 1050A aluminum alloy
The main goal of this study is to analyze the influence of radial-shear rolling (RSR) modes on the structure and properties of 1050A using finite element modeling (FEM) and experimental verification of the results. Ingots with a diameter of 60 mm were obtained, which were rolled into rods with a diameter of 14 mm at different regimes (total elongation ratio µ = 18.4). After rolling, the evolution of the microstructure and mechanical properties of the resulting rods were investigated. It is established that during RSR process the nonuniform change in temperature-velocity and deformation parameters occurs in the volume of deformable body, which determines the forming of gradient spiral structure. FEM was used for good understanding processes of microstructure evolution and properties depending on parameters of RSR methods. Based on the FEM simulation the change in temperature and strain rates in the volume of deformed body at different temperature (T=25 up to 350 °C) was obtained. Depending on the selected temperature-velocity parameters it is possible to obtain a different combination of mechanical properties (UTS ~ 94 up to 20 MPa; YS ~ 88 up to 110 MPa; e = 1 up to 43.5 %). The strength of obtained RSR rods from 1050A alloy at all regimes is significantly higher than the strength of industrial rods in a hot-pressed condition that shows the application prospect of RSR process as efficient method of controlled plastic deformation of aluminum alloys and obtaining long rods.
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