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FEM Simulation of Strain Gradients Induced in Metal Sheets by Special Rolling Techniques

机译:用特殊轧制技术在金属板中诱导应变梯度的有限元模拟

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Creating of gradient structures with the grain size changing from microns to nano-scale through the thickness of processed metallic materials represents a new advanced strategy for producing a superior combination of high strength and good ductility. Predetermined strain gradient can be considered as a mechanism of creating of gradient structures. Strain gradient through sheet thickness can be achieved by special rolling techniques. Searching the process parameters, which provide predetermined strain gradient, is very important. This paper presents the distributions of the plastic strain through sheet thickness of low-, medium- and high- strength aluminum alloys processed by different rolling techniques: skin pass rolling with high contact friction and high-ratio differential speed rolling (HRDSR). Effects of sheet thickness, contact friction, thickness reduction per pass, rolls speed ratio, back and front tensions were investigated by the rigid-plastic finite element analysis. The results of the numerical simulation have demonstrated that plastic strain is more severe in the material surface, where the circumferential speed of the work roll is lower. In all cases, strain is continuously and unidirectionally increased from the minimum value on the contact with faster roll to the maximum value on the contact with slower roll during HRDSR. The non-linear effect of the influence of the rolls speed ratio on strain difference was found. The extremum of the strain difference through the sheet thickness exists. Extremely high strain difference through sheet thickness was found during a single-pass HRDSR. The extremum can be reached, when rolls speed ratio is optimal. Finite element analysis of strain gradients can be used for development of the special rolling techniques for fabrication of metal sheets with gradient structures and improved properties.
机译:通过加工金属材料厚度从微米改变晶粒尺寸以从微米转换为纳米级的梯度结构代表了生产高强度和良好延展性的优越组合的新先进策略。可以认为预定的应变梯度可以被认为是梯度结构的产生机制。通过特殊的轧制技术可以实现应变梯度通过片材厚度。搜索提供预定应变梯度的过程参数非常重要。本文介绍了通过不同轧制技术处理的低,中型和高强度铝合金的塑料应变的分布:皮肤通过高接触摩擦和高比例差速轧制(HRDSR)。通过刚性塑料有限元分析研究了片材厚度,接触摩擦,厚度降低,辊速比,背部和前张力的影响。数值模拟的结果表明,材料表面中的塑料应变更严重,其中工作辊的圆周速度较低。在所有情况下,在HRDSR期间,在与接触的最小值上连续且单向增加,从接触的最小值与滚动较慢的卷上的最大值,与较慢的卷上的最大值。发现辊速度比对应变差的影响的非线性效应。存在通过片材厚度的应变差异的极端。在单次通过HRDSR期间发现通过片材厚度极高应变差异。当辊速比最佳时,可以达到极值。应变梯度的有限元分析可用于开发具有梯度结构的金属板的特殊轧制技术和改进的性能。

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