网站首页期刊简介编委会过刊目录投稿指南广告合作征订与发行联系我们English
降低Q235热轧钢板带状组织的工艺参数优化
英文标题:Optimization on process parameters for reducing banded structure of Q235 hot rolled steel plate
作者:季业益1 陆宝山1 关集俱1 李强伟2 
单位:1. 苏州工业职业技术学院 精密制造工程系  苏州大学 工程训练中心 
关键词:Q235热轧钢板 带状组织 弯曲成形性 Taguchi法 精轧 盘卷 
分类号:TG335
出版年,卷(期):页码:2022,47(6):141-147
摘要:

 为降低Q235热轧钢板的带状组织、提升其弯曲成形性,利用Taguchi正交试验法选定了精轧轧制速度、精轧完成温度、盘卷速度及盘卷温度这4项工艺参数,探讨了Q235热轧钢板热轧后上述工艺参数对带状组织最大厚度与最大长度的影响,确定了Q235热轧钢板的最佳热轧工艺参数组合,并进行了弯曲试验验证。结果显示:各工艺参数对带状组织最大厚度的影响程度顺序为精轧完成温度>精轧轧制速度>盘卷温度>盘卷速度;而对带状组织最大长度的影响程度顺序为精轧完成温度>盘卷温度>盘卷速度>精轧轧制速度;降低Q235热轧钢板中带状组织的最佳工艺参数组合为精轧轧制速度为0.80 m·s-1、精轧完成温度为870 ℃、盘卷速度为2.80 m·s-1、盘卷温度为650 ℃,在此热轧条件下带状组织的最大厚度减少了65%、最大长度减少了74%

 To reduce banded structure in Q235 hot rolled steel plate and improve its bending formability, four process parameters such as finishing rolling speed, finishing rolling temperature, coiling speed and coiling temperature were selected by Taguchi orthogonal experiment method, and the influences of process parameters on maximum thickness and maximum length of banded structure were discussed after Q235 steel plate was hot rolled. Then, the best hot rolling process parameters combination for Q235 hot rolled steel plate was confirmed, and the bending test was carried out. The results show that the influence degree of process parameters on the maximum thickness of banded structure is in the order of finishing rolling temperature > finishing rolling speed > coiling temperature > coiling speed, and the influence  degree  on the maximum length of banded structure is in the order of finishing rolling temperature > coiling temperature coiling speed> finishing rolling speed. The optimal combination of hot rolling process parameters to reduce the banded structure  of Q235 hot rolled steel plate is the finishing rolling speed of 0.8 m·s-1, the finishing rolling temperature of 870 ,the colling speed of 2.8 m·s-1,and the colling temperature of 650 . Under this hot rolling condition, the maximum thickness of banded structure is reduced by 64%, and the maximum length is reduced by 74%.

基金项目:
国家自然科学基金青年基金资助项目(51805345);江苏省自然科学基金青年基金资助项目(BK20170373);江苏高校“青蓝工程”资助项目(2019);苏州市重点实验室资助项目(SZS201815);江苏省高职院校教师专业带头人高端研修(2022GRGDYX053)
作者简介:
季业益(1980-),男,硕士,副教授 E-mail:00314@siit.edu.cn
参考文献:

 [1]张爱民, 陈晔, 苗钊. 16MnR容器钢板带状组织的研究[J]. 山东冶金, 2002, 24(6): 38-40.


 


Zhang A M, Chen Y, Miao Z. Study on banded structure in 16MnR vessel plate [J]. Shandong Metallurgy, 2002, 24(6): 38-40.


 


[2]刘宗昌, 王玉峰, 杨慧,. 42CrMo钢锻轧材的带状组织[J]. 包头钢铁学院学报, 2003, 22(4): 323-326.


 


Liu Z C, Wang Y F, Yang H, et al. The banding structure of forgingrolling bar of 42CrMo steel [J]. Journal of Baotou University of Iron and Steel Technology, 2003, 22(4): 323-326.


 


[3]张迎晖, 赖泓州, 赵鸿金. 钢中带状组织的研究现状[J]. 轧钢, 2014, 31(3): 45-47.


 


Zhang Y H, Lai H Z, Zhao H J. Research status of banded structure in steel [J]. Steel Rolling, 2014, 31(3): 45-47.


 


[4]Thompson S W, Howell P R. Factors influencing ferrite/pearlite banding and origin of large pearlite nodules in a hypoeutectoid plate steel [J]. Materials Science and Technology, 1992, 8(9):777.


 


[5]Solidification K G. Segregation and banding in carbon and alloy steels [J]. Metallurgical and Materials Transactions: B, 2003, 6(3):781-792.


 


[6]Grossterlinden R, Kawalla R, Lotter U, et al. Formation of pearlite banded structures in ferritepearlite steels [J]. Steel Research, 1992, 63(8): 331-339.


 


[7]Offerman S E, Van Dijk N H, Rekveldt M T, et al. Ferrite/pearlite band formation in hot rolled medium carbon steel [J]. Materials Science and Technology, 2002, 18(3): 297-306.


 


[8]纪元, 闵云峰, 李鹏善,. 钢中带状组织及其研究现状[J]. 中国冶金, 2016, 26(4):1-9.


 


Ji Y, Min Y F, Li P S, et al. Research status of banding phenomena in steels [J]. China Metallurgy, 2016, 26(4):1-9.


 


[9]陈彤, 李永亮,邝霜,. 热轧带钢均匀化冷却问题分析与控制措施[J]. 锻压技术,2021,46(7):83-89.


 


Chen TLi Y LKuang Set al. Analysis and control measures on uniform cooling for hot rolling strip steel[J]. Forging & Stamping Technology2021,46(7):83-89.


 


[10]杨建, 覃显峰,李钊文,. 热成形门环的制造工艺[J]. 锻压技术,2021,46(7):71-78.


 


Yang JQin X FLi Z Wet al. Manufacturing process on thermoforming door ring[J]. Forging & Stamping Technology2021,46(7):71-78.


 


[11]李文卿, 王连伟. 控制轧制和控制冷却对16Mn钢板带状组织的影响[J]. 物理测试, 1990, 3(4):25-28.


 


Li W QWang L W. Influence of controlled rolling and controlled cooling on banded structure of 16Mn steel plate[J]. Physical Testing, 1990, 3(4):25-28.


 


[12]林大为, 沈黎晨, 戴一一, . 终轧温度对16Mn钢板带状组织的影响[J]. 轧钢, 1999,8(4):21-24.


 


Lin D W, Shen L C, Dai Y Y, et al. The effect of finishing rolling temperature on banded structure of 16Mn steel plate [J]. Steel Rolling, 1999, 8(4): 21-24.


 


[13]龙明建, 王自荣, 张丽琴, . 低碳高锰热轧带钢带状组织控制实践[J]. 轧钢, 2015, 32(4):84-87.


 


Long M J, Wang Z R, Zhang L Q, et al. Practice of banded structure control for hot rolled low carbon and high manganese steel strip [J]. Steel Rolling, 2015, 32(4):84-87.


 


[14]刘俊英. 基于正交试验的车用螺母成形分析及模具磨损优化 [J]. 锻压技术,2020,45(2):182-187.


 


Liu J Y. Forming analysis and mould wear optimization on nuts for vehicle based on orthogonal test [J]. Forging & Stamping Technology2020,45(2): 182-187.


 


[15]靳阳. 基于正交试验的内凹形零件成形工艺参数优化 [J]. 锻压技术,2020,45(5):105-109.


 


Jin Y. Optimization on forming process parameters for concave part based on orthogonal test [J]. Forging & Stamping Technology2020,45(5): 105-109.


 


[16]汪永明, 李偎,谈莉斌,. 基于正交实验的弯链板U弯冲压成形数值仿真[J]. 锻压技术,2021,46(12):46-53.


 


Wang Y MLi WTan L Bet al. Numerical simulation on Ubending for curved chain plate based on orthogonal experiment[J]. Forging & Stamping Technology2021,46(12):46-53.

服务与反馈:
本网站尚未开通全文下载服务】【加入收藏
《锻压技术》编辑部版权所有

中国机械工业联合会主管  中国机械总院集团北京机电研究所有限公司 中国机械工程学会主办
联系地址:北京市海淀区学清路18号 邮编:100083
电话:+86-010-82415085 传真:+86-010-62920652
E-mail: fst@263.net(稿件) dyjsjournal@163.com(广告)
京ICP备07007000号-9