首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B. Journal of engineering manufacture >Finite element-based inverse approach to estimate the friction coefficient in hot bar rolling process
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Finite element-based inverse approach to estimate the friction coefficient in hot bar rolling process

机译:基于有限元的逆方法来估计热杆轧制过程中的摩擦系数

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摘要

This article proposes a finite element analysis-based inverse approach to estimate the friction coefficient in hot bar rolling. The focus is to minimize the difference between the spread of material measured from the pilot hot bar rolling test and that computed from finite element analysis. The recursive response surface method was used with a changed observation range to minimize the difference. The pilot hot bar rolling test was conducted at temperatures ranging from 850 degrees C to 1150 degrees C and reduction ratios from 20% to 40%. Finite-element simulation of the pilot hot bar rolling test was carried out. A fast running model that can rapidly determine the friction coefficient at the arbitrary reduction ratios and temperatures in the ranges mentioned above was also presented. The estimated friction coefficient was approximately 10%-17% higher than the friction coefficient typically used in hot strip rolling. The effect of temperature variation on the friction coefficient was greater at higher reduction ratios (30%-40%) than at a lower reduction ratio (20%).
机译:本文提出了基于有限元分析的反向方法来估计热杆轧制中的摩擦系数。重点是最小化从导频热杆滚动试验中测量的材料的扩散之间的差异,并从有限元分析计算。递归响应表面方法与改变的观察范围一起使用以最小化差异。在从850℃至1150℃的温度下,试验热杆滚动试验从20%到40%的温度下进行。进行了试验热杆滚动试验的有限元模拟。还提出了一种快速运行模型,其可以快速地确定上述范围内的任意减小比和温度的摩擦系数。估计的摩擦系数比通常用于热条轧制的摩擦系数高约10%-17%。温度变化对摩擦系数对较高的减少比(30%-40%)的影响更大(30%-40%)比下降率(20%)。

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