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Controlling mechanism of ferrite grain size generated through large strain deformation of 0.15C steel

机译:通过大应变变形产生的铁氧体粒度的控制机制0.15℃钢

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During large strain deformation of materials, the width of the initial high angle grain boundaries approaches the order of mean diffusion distances encountered during elevated temperature deformation. Since the evolution of ultrafine grains is attributed to thermally activated processes, the role of interfaces in determining the grain size is significant. In order to investigate into this role, microstructure development in low carbon steel (0.15% C) subjected to large strain deformation was studied with specific reference to the controlling mechanism of ferrite grain size evolution. Plane strain compression tests have been conducted in the temperature range of 773-923K at strain rates of 0.01 s~(-1) and 1 s~(-1) and the specimens were deformed to 25% of the original thickness and the Microstructural evolution is studied. Based on the results obtained, diffusion along grain boundaries was found to be the mechanism controlling ferrite grain size in this material processed through large strain deformation.
机译:在大规模的材料变形期间,初始高角度晶界的宽度接近在高温变形期间遇到的平均扩散距离的顺序。由于超细晶粒的进化归因于热敏过程,因此界面在确定晶粒尺寸时的作用是显着的。为了调查该作用,研究了对低碳钢(0.15%C)进行大应变变形的微观结构,并具体参考铁氧体晶粒尺寸进化的控制机制。平面应变压缩试验的温度范围内的773-923K在0.01秒〜(-1)和1秒〜(-1)的应变速率已经进行和将样品变形到原来的厚度和微结构演进的25%研究过。基于所得到的结果,发现沿晶界的扩散是通过大应变变形处理的该材料中的铁氧体晶粒尺寸控制的机制。

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