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FEM Simulation of Influence of Asymmetric Cold Rolling on Through-Thickness Strain Gradient in Low-Carbon Steel Sheets

机译:不对称冷轧对低碳钢板全厚度应变梯度影响的有限元模拟

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Grain refinement by severe plastic deformation can make conventional metallic materials several times stronger, but it leads to dramatic loss of their ductility. Gradient structure through the thickness of processed material represents a new strategy for producing a superior combination of high strength and good ductility. In gradient metallic materials the grain size increases gradually from nanoscale at the surface to coarse-grained in the core. Strain gradient can be considered as a mechanism of creating of such microstructures. Providing of predetermined strain gradient in the metallic materials can be achieved by asymmetric rolling (AR), when circumferential speeds of the top and bottom work rolls are different. Since the AR is a continuous process, it has great potential for industrial production of large-scaled sheets. Searching the optimal process parameters which can provide special strain gradients through sheet thickness is very important. This paper presents the distributions of the effective strain through sheet thickness of low-carbon steel AISI 1015 processed by a single-pass AR. Influence of process parameters was investigated by the finite element method with using software DEFORM 2D. Extremely high strain gradient e ≈ 4...8 through sheet thickness during a single-pass AR was found. FE analysis of the deformation characteristics, presented in this study, can be used for optimization of the AR process as a method of fabrication of metallic materials with gradient microstructures.
机译:通过严重的塑性变形使晶粒细化可以使常规金属材料强度提高几倍,但会导致其延展性急剧下降。贯穿加工材料厚度的梯度结构代表了一种新策略,可实现高强度和良好延展性的完美结合。在梯度金属材料中,晶粒尺寸从表面的纳米级逐渐增加到核心的粗粒度。应变梯度可以被认为是产生这种微结构的机制。当顶部和底部工作辊的圆周速度不同时,可以通过不对称轧制(AR)在金属材料中提供预定的应变梯度。由于增材制造是一个连续的过程,因此它在工业生产大型板材方面具有巨大的潜力。寻找最佳的工艺参数以在整个板厚范围内提供特殊的应变梯度非常重要。本文介绍了通过单道次AR处理的低碳钢AISI 1015的整个板厚的有效应变分布。使用软件DEFORM 2D通过有限元方法研究了工艺参数的影响。发现在单次通过AR过程中,整个片材厚度都具有极高的应变梯度e≈4 ... 8。这项研究中提出的有限元分析变形特征,可用于优化AR工艺,作为一种具有梯度微结构的金属材料的制造方法。

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