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An experimental and numerical investigation on micro rolling for ultra-thin strip

机译:超薄带钢微轧的实验与数值研究

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摘要

The demand for miniaturized parts and miniaturized semi-finished products is increasing nowadays, because microforming processes can improve production rate and minimize material waste due to less forming passes. However, traditional macro metal forming processes and modelling cannot be simply scaled down to produce miniaturized micro parts. In this study, a 2-Hi micro rolling mill has been successfully built. Experimental and numerical investigations on the micro rolling process for ultra-thin SUS 304 stainless steel strip have been conducted. The experimental results show that the micro rolling deformation of ultra-thin strip is influenced by size effect which results from the specimen size difference and this size effect is embodied in the flow stress and the friction coefficient. Analytical and finite element (FE) models in describing size effect related phenomena, such as flow stress, friction, rolling force and deformation behaviour, are proposed. The material surface constraint and the material deformation mode are critical in determination of material flow stress curve. The analysis of surface roughness evolution with rolling conditions has also been performed. The identified analysis on deformation mechanics provides a basis for further exploration of the material behaviour in plastic deformation of micro scale and the development of micro scale products via micro rolling.
机译:如今,对微型零件和微型半成品的需求正在增长,这是因为微成形工艺可以提高生产率,并减少成形次数,从而最大程度地减少材料浪费。但是,传统的宏观金属成形工艺和模型不能简单地按比例缩小以生产微型零件。在这项研究中,成功​​地建造了2-Hi微型轧机。对超薄SUS 304不锈钢带材的微轧工艺进行了实验和数值研究。实验结果表明,超薄带材的微观轧制变形受试样尺寸差异产生的尺寸效应的影响,该尺寸效应体现在流动应力和摩擦系数上。提出了用于描述与尺寸效应有关的现象的分析和有限元(FE)模型,例如流动应力,摩擦,滚动力和变形行为。材料表面约束和材料变形模式对于确定材料流动应力曲线至关重要。还进行了轧制条件下的表面粗糙度演变分析。所确定的变形力学分析为进一步探索微观尺度塑性变形中的材料行为以及通过微轧制发展微观尺度产品提供了基础。

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