首页> 外文会议>ESAFORM 2012;ESAFORM Conference on Material Forming >Analysis of roll gap heat transfers in hot steel strip rolling through roll temperature sensors and heat transfer models
【24h】

Analysis of roll gap heat transfers in hot steel strip rolling through roll temperature sensors and heat transfer models

机译:通过辊温传感器和传热模型分析热钢带轧制中轧辊间隙热转移

获取原文

摘要

This paper presents an analysis of roll bite heat transfers during pilot hot steel strip rolling. Two types of temperature sensors (drilled and slot sensors) implemented near roll surface are used with heat transfer models to identify interfacial heat flux, roll surface temperature and Heat Transfer Coefficient HTC_(roll-bite) in the roll bite. It is shown that: - the slot type sensor is more efficient than the drilled type sensor to capture correctly fast roll temperature changes and heat fluxes in the bite during hot rolling but its life's duration is shorter. - average HTC_(roll-bite) is within the range 15-26 kW/m~2/K: the higher the strip reduction (e.g. contact pressure) is, the higher the HTC_(roll-bite) is. - scale thickness at strip surface tends to decrease heat transfers in the bite from strip to roll. - HTC_(roll-bite) is not uniform along the roll-strip contact but seems proportional to contact pressure. - this non uniform HTC_(roll-bite) along the contact could contribute to decrease thermal shock (so roll thermal fatigue) when the work roll enters the roll bite, in comparison to a uniform HTC_(roll-bite). - Heat transfer in the roll bite is mainly controlled by heat conduction due to the huge roll-strip temperature difference, while heat dissipated by friction at roll-strip interface seems negligible on these heat transfers.
机译:本文在试点热钢带轧制过程中提出了对辊咬热传输的分析。在辊表面附近实现的两种类型的温度传感器(钻孔和插槽传感器)与传热模型一起使用,以识别辊咬合中的界面热通量,辊表面温度和传热系数HTC_(卷咬)。结果表明: - 槽型传感器比钻孔型传感器更有效,以在热轧中捕获正确的快速辊温度变化和热量的热量,但其寿命持续时间较短。 - 平均HTC_(滚针咬合)在15-26 kW / m〜2 / k范围内:条带减少(例如接触压力)越高,HTC_(轧件)越高。 - 条带表面的刻度厚度倾向于从条带卷中咬合的热量转移。 - HTC_(滚针)沿辊条触点不均匀,但似乎与接触压力成比例。 - 与均匀的HTC_(卷咬合)相比,这种非均匀的HTC_(滚针)可以有助于减少辊隙时的热冲击(所以滚动热疲劳)。 - 由于轧辊条带温度差异,辊咬的热传递主要通过导热控制,而在卷筒界面下摩擦散热散热似乎可忽略不计。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号