Comprehensive shape control technology for CSP hot strip mills

被引:5
作者
Chen C.-C. [1 ]
Shao J. [1 ]
He A.-R. [1 ]
Zhang N.-F. [2 ]
机构
[1] National Engineering Research Center for Advanced Rolling Technology, University of Science and Technology Beijing, Beijing
[2] CSP Hot Strip Mill, Hunan Valin Lianyuan Iron & Steel Co., Ltd, Loudi
关键词
Compact strip product (CSP); control model; hot strip mills; roll contour; rolling process; shape control;
D O I
10.1007/s11633-015-0939-1
中图分类号
学科分类号
摘要
With the increasing demand on higher strip quality, the profile and flatness of hot rolling strips have become subjects of concern, particularly for compact strip product (CSP) hot strip mills. Based on the roll contour, control model, and rolling process, a comprehensive shape control technology is proposed and applied to CSP hot strip mill of Lianyuan steel, which includes optimization and design of the work roll contour and varying contact back-up roll (VCR) plus backup roll contour, analysis of the flatness feedback control model, as well as improvement of the rolling process control system. The application of the technology has significantly improved the shape control performance. The roll wear is improved and the general roll consumption of the finishing mill is reduced by 29.86%. The percentages that satisfy the control target ranges of the average strip flatness and crown are increased by approximately 15.40% and 14.82%, respectively. The rejection rate of grade Q235 due to shape quality problem is reduced monthly by 39.69%, which creates significant economic benefits for the plant. © 2015, Institute of Automation, Chinese Academy of Sciences and Springer-Verlag Berlin Heidelberg.
引用
收藏
页码:611 / 619
页数:8
相关论文
共 19 条
  • [1] Kong F.F., He A.R., Shao J., Research on rapid online calculation methods of roll stack deformation, Journal of Mechanical Engineering, 48, 2, pp. 121-126, (2012)
  • [2] Liu Y.L., Biglou J., Fan J., Fitzpatrick J.J., Nelson B.D., Strip shape simulation software for the continuous cold rolling process, Iron and Steel Technology, 2, 4, pp. 180-190, (2005)
  • [3] Chen X.L., Zou J.X., A specialized finite element model for investigating controlling factors affecting behavior of rolls and strip flatness, Proceedings of the 4th International Steel Rolling Conference, (1987)
  • [4] Yushi M., Ikuo Y., Yuji H., Yozo O., Kou T., Development of hot rolling technology for improving strip profile and flatness, Kawasaki Steel Technical Report, 12, pp. 1-14, (1985)
  • [5] Klockner J., CVC technology for hot rolling mills, Metallurgical Plant and Technology, 65, 5, pp. 54-60, (1988)
  • [6] Chen X.L., Zhang J., Zhang Q.D., Wang C.S., Yang Q., Liu B.R., Wang L., Wei G.C., Huang S.Q., Yang J.A., Development in profile and flatness control system of hot strip mills, Iron and Steel, 35, 7, pp. 28-33, (2000)
  • [7] Wang R.Z., He A.R., Yang Q., Zhao L., Dong H.R., Profile control capability of LVC work roll contour, Iron and Steel, 41, 5, pp. 41-44, (2006)
  • [8] He A.R., Huang T., Yang Q., Chen X.L., Zhao L., Development of integrated shape control technologies in hot strip mills, Journal of University of Science and Technology Beijing, 29, 5, pp. 519-522, (2007)
  • [9] Flemming G., Hofmann F., Rohde W., CSP plant technology and its adaptation to expanded production programs, Stahl und Eisen, 113, 2, pp. 37-46, (1993)
  • [10] Zhu T., Xiang Y., Kang M., Chang J., Research on controlling of plate convexity in hot rolling, Iron Steel Vanadium Titanium, 23, 2, pp. 23-28, (2002)