Optimization of reduction schedule in a tandem cold rolling mill considering the material properties of the strip

被引:0
作者
Masoud Asadi
Mehrdad Poursina
Shahram Pourfarid
Farhad Haji Aboutalebi
机构
[1] University of Isfahan,Department of Mechanical Engineering
[2] Mobarakeh Steel Company,undefined
来源
International Journal of Material Forming | 2023年 / 16卷
关键词
Tandem cold rolling; Reduction schedule; Optimization; Ductile damage; Fracture locus; Strip material properties;
D O I
暂无
中图分类号
学科分类号
摘要
The material properties of the strip play a vital role in the power consumption and the damage evolution in a tandem cold rolling mill. Therefore, the strip tearing or power consumption level of importance is not the same for different materials. Besides, various reduction schedules can be proposed for the specified total reduction and initial strip thickness in the tandem cold rolling process. An important goal that the reduction patterns should be met is to minimize power consumption and damage evolution simultaneously. Firstly, the level of importance of saving energy and strip tearing should be calculated for each material to find a reduction schedule. For this purpose, the Bao-Wierzbicki (BW) ductile damage criterion is selected and calibrated by the hybrid experimental–numerical method for five widely used carbon steel alloys. Then, the fracture loci of selected materials are constructed and implemented into an explicit finite element code. A five-stand tandem rolling mill is simulated numerically in which the flattening phenomenon of the rollers is considered. By comparing the simulation results, an indicator is introduced for the comparison of steel grades in terms of the rolling power consumption and damage evolution in a specified rolling program. Afterward, the Pareto optimality is undertaken to optimize the power-damage objective function. This paper presents a new method for determining the importance of damage evolution and power consumption based on material properties. This method significantly reduces energy consumption and the probability of strip tearing simultaneously in a tandem cold rolling mill.
引用
收藏
相关论文
共 105 条
[11]  
De Boer F(2015)Load distribution algorithm of process control system in tandem cold rolling Mater Res Innov 19 S220-S224
[12]  
Ma B(2004)A comprehensive failure model for crashworthiness simulation of aluminum extrusions Int J Crashworthiness 9 449-464
[13]  
Yuen WD(2018)Numerical simulations and experimental validations of a proposed ductile damage model for DIN1623 St12 steel Eng Fract Mech 192 276-289
[14]  
Pires C(2021)A comparative study of six fracture loci for DIN1623 St12 steel to predict strip tearing in a tandem cold rolling mill Arch Appl Mech 91 1859-1878
[15]  
Ferreira H(2018)Damage and failure at negative stress triaxialities: Experiments, modeling and numerical simulations Int J Plast 102 70-82
[16]  
Sales R(2021)Influence of pass reduction in cold rolling on damage evolution in deep drawing of rotationally symmetric cups IOP Conf Ser Mater Sci Eng 1157 012050-82
[17]  
Silva M(2004)A computational and experimental study of cold rolling of aluminum alloys with edge cracking J Manuf Sci Eng 126 74-417
[18]  
Okado M(2005)Prediction of internal defects in plane strain rolling J Mater Process Technol 159 409-625
[19]  
Suzuki H(2011)Continuum damage mechanics analysis of strip tearing in a tandem cold rolling process Simul Model Pract Theory 19 612-73
[20]  
Murakami A(2012)Application of genetic algorithms to optimization of rolling schedules based on damage mechanics Simul Model Pract Theory 22 61-3078