FEM simulation of dynamic recrystallization during asymmetric hot rolling of high-speed steel M2

A. Pesin, D. Pustovoytov, Ilya Pesin, Hailiang Yu, Puneet Tandon, Harshal Y. Shahare, A. Dubey, Leonid Nosov
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Abstract

Abstract. Dynamic recrystallization of high-speed steel (HSS) M2 occurs through a discontinuous mechanism, involving nucleation and growth of strain-free grains. The initiation and completion of discontinuous dynamic recrystallization (dDRX) must be carried out in a single rolling pass. The time for 99% dDRX depends on the critical strain, strain rate and equivalent strain, that generated in the workpiece material in a single rolling pass. The level of equivalent strain plays a key role in terms of the possibility to complete dDRX. High equivalent strain in conventional hot rolling for a single pass is limited by too high rolling forces. High equivalent strain at low rolling forces can be achieved by asymmetric hot rolling. Asymmetric rolling is a process based on purposefully created differences in the circumferential speeds of the work rolls. For such a process, a degree of asymmetry is defined by a speed ratio of the work rolls. The speed ratio is one of the most important parameters of the process, affecting the level of equivalent strain and the rolling force. In this work the single-pass asymmetric hot rolling process of HSS M2 at different temperatures in the range 850-1150 °C was simulated by FEM and JMAK model. The effects of speed ratio and thickness reduction on equivalent strain and rolling force were investigated. The effects of equivalent strain, strain rate and temperature on the recrystallized volume fraction and the average size of a dynamically recrystallized grains of HSS M2 are presented. Symmetric and asymmetric hot rolling processes are compared.
M2高速钢非对称热轧动态再结晶的有限元模拟
摘要高速钢(HSS) M2的动态再结晶是通过不连续机制发生的,包括无应变晶粒的形核和长大。不连续动态再结晶(dDRX)的产生和完成必须在单道次轧制中进行。99% dDRX的时间取决于工件材料在单道次轧制中产生的临界应变、应变率和等效应变。等效应变的高低对完成dDRX的可能性起着关键作用。传统热轧单道次的高等效应变受轧制力过大的限制。非对称热轧可以在低轧制力下获得高等效应变。不对称轧制是一种基于有目的地制造工作辊周向速度差异的过程。对于这种工艺,不对称的程度是由工作辊的速比来定义的。速比是影响等效应变水平和轧制力的重要工艺参数之一。本文采用有限元法和JMAK模型对HSS M2在850 ~ 1150℃不同温度下的单道次非对称热轧过程进行了数值模拟。研究了速比和减厚对等效应变和轧制力的影响。研究了等效应变、应变速率和温度对HSS M2动态再结晶晶粒体积分数和晶粒平均尺寸的影响。对对称和非对称热轧工艺进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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