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Effect of Deformation Temperature on Microstructure Evolution in ARB Processed Ultralow Carbon IF Steel

机译:变形温度对ARB工艺超低碳IF钢组织演变的影响

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The effect of deformation temperature on the microstructure evolution was investigated in the range from room temperature to 600°C for an ultralow carbon interstitial free steel deformed to high strain by accumulative roll-bonding (ARB). In the whole temperature range, the microstructure was being subdivided by deformation-induced boundaries, and the spacing of such boundaries decreased with increasing the applied strain. The mechanism of this microstructure evolution is known as grain subdivision. In the warm-temperature ARB at 400°C and above, a quite uniform lamellar boundary structure elongated to the rolling direction was obtained after high strain, where the boundary spacing tended to be saturated above strain of approximately 4 and the saturated boundary spacing became smaller when the deformation temperature was lower. It is suggested that the microstructure after high strain deformation is determined by a balance of deformation-induced grain subdivision and restoration processes such as recovery and short-range boundary migration, and that the saturated boundary spacing is explained as a function of the Zener-Hollomon parameter. However, localized shear banding occurred at high strain in the room-temperature ARB, leading to inhomogeneities in the microstructure. It is therefore considered that a moderate deformation temperature as well strain rate has to be chosen to avoid shear localization and obtain homogeneous nanostructures.
机译:研究了变形温度对通过累积辊压结合(ARB)变形为高应变的超低碳无间隙钢的室温至600°C范围内的影响。在整个温度范围内,微观结构被形变引起的边界细分,并且随着施加应变的增加,这些边界的间距减小。这种微观结构演变的机制称为晶粒细分。在400℃以上的高温ARB中,在高应变之后获得了沿轧制方向伸长的相当均匀的层状边界结构,其中在高于约4的应变时边界间距趋于饱和,并且饱和边界间距变小。当变形温度较低时。有人认为,高应变变形后的微观结构是由变形引起的晶粒细分和恢复过程(如恢复和短程边界迁移)的平衡决定的,并且饱和边界间距被解释为齐纳-霍尔洛门的函数。参数。但是,在室温下的ARB中,高应变下会发生局部剪切带,从而导致微观结构不均匀。因此,认为必须选择适度的变形温度以及应变率,以避免剪切局部化并获得均匀的纳米结构。

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