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Effect of the Number of Work-roll Surface Division on Prediction of Contact Length in Coupled Analysis of Roll and Strip Deformation during Sheet Rolling

机译:薄板轧制过程中带钢和板带变形的耦合分析中,工作辊表面分割数对接触长度预测的影响

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摘要

In order to perform accurate three-dimensional rolling analysis of sheet deformation, it is required to predict the contact length accurately in consideration of the surface waviness due to the flattening deformation of work roll surface. Flattening deformation analysis based on theory of elasticity and three-dimensional elastic FEM have been developed, and their accuracy in predicting flattening deformation and contact length are validated in this report. As the flattening deformation of the work roll surface changes sharply at the boundary of contact area, the contact length is expected to change according to the number of work roll surface division, especially in circumferential direction, for calculation. Then, the influences of the number of division on roll profile and contact length used for numerical analysis are investigated. The following results are obtained; 1) The differences between the results obtained by three-dimensional elastic FEM and formula for roll flattening of Nakajima and Matsumoto is not significant. 2) When the number of division of work roll surface is increased, the end point of contact region moves toward the downstream side, therefore, the contact length becomes longer and it is necessary to divide the work roll surface into enough much elements. 3) As long as enough much elements are used for the calculation, solutions, such as rolling pressure distribution or thickness distribution of rolled strip, obtained by three-dimensional analysis reveal little difference from those obtained using formula for roll flattening given by Hitchcock.
机译:为了对片材变形进行精确的三维轧制分析,需要考虑到由于工作辊表面的平整变形而引起的表面波纹度来精确地预测接触长度。本研究基于弹性理论和三维弹性有限元方法,对压扁变形进行了分析,验证了其在压扁变形和接触长度预测中的准确性。随着工作辊表面的扁平变形在接触区域的边界处急剧变化,为了计算,期望接触长度根据工作辊表面划分的数量而改变,特别是在圆周方向上。然后,研究了划分数量对用于数值分析的轧辊轮廓和接触长度的影响。得到以下结果; 1)通过三维弹性有限元法获得的结果与中岛和松本的辊压扁公式之间的差异不明显。 2)当工作辊表面的分割数量增加时,接触区域的端点向下游侧移动,因此,接触长度变长,并且有必要将工作辊表面分割成足够多的元素。 3)只要使用足够多的元素进行计算,通过三维分析获得的解决方案,例如轧制压力分布或轧制带材的厚度分布,与使用希区柯克给出的轧制压扁公式获得的解决方案几乎没有区别。

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