Thermal optimization of secondary cooling systems in the continuous steel casting process

被引:14
作者
Pourfathi, Ali [1 ]
Tavakoli, Rouhollah [1 ,2 ]
机构
[1] Sharif Univ Technol, Dept Mat Sci & Engn, Tehran, Iran
[2] Sharif Univ Technol, Dept Mat Sci & Engn, POB 11365-9466, Tehran, Iran
关键词
CALPHAD; Continuous steel casting; Design optimization; Niyama criterion; Optimal design; MODEL-PREDICTIVE CONTROL; HEAT-TRANSFER COEFFICIENTS; TOPOLOGY OPTIMIZATION; NUMERICAL-SIMULATION; GENETIC ALGORITHM; SOLIDIFICATION; TEMPERATURE; EVOLUTION; IDENTIFICATION; SHRINKAGE;
D O I
10.1016/j.ijthermalsci.2022.107860
中图分类号
O414.1 [热力学];
学科分类号
摘要
A new process design methodology for the cooling system in the continuous steel casting process is introduced. It is based on a semi-empirical approach for choosing the primary cooling zone design parameters and using an optimization-based method to decide on the design parameters corresponding to the secondary cooling zone. The heat flux through the secondary cooling zone is the design parameter in the latter case. Unlike former studies that considered a misfit temperature function as the objective function, it is defined here as the square of the temperature field penalized with the Niyama's criterion infeasibility to ensure the production of microporosity-free strands. This way, no information about the target temperature field is required in advance. The corresponding heat transfer problem is coupled to CALPHAD to consider commercial steel grades straightforwardly. An efficient gradient-based optimization algorithm is employed to find the optimal values of design parameters. Then, this algorithm is employed in an actual process design problem corresponding to the continuous slab casting of a commercial steel grade. A post-processing approach is suggested to convert the results of numerical optimization to industrially relevant machine parameters, and then they are exploited in practice in the foundry plant. While the optimization problem is only constrained to avoid solidification -induced defects, it produces sound and crack-free strands. Moreover, comparing numerical results to actual surface temperature measurements reveals more petite than a six percent discrepancy between the simulation and experiment. These observations illustrate the feasibility of the presented design methodology as the initial step in deciding on the cooling system parameters in this process.
引用
收藏
页数:12
相关论文
共 78 条
[1]   A new semi-analytical model for prediction of the strand surface temperature in the continuous casting of steel in the mold region [J].
Alizadeh, Mostafa ;
Jahromi, Ahmad Jenabali ;
Abouali, Omid .
ISIJ INTERNATIONAL, 2008, 48 (02) :161-169
[2]  
Assuncao C., 2014, TECNOL METAL MAT MIN, V11, P363
[3]   Review of Peritectic Solidification Mechanisms and Effects in Steel Casting [J].
Azizi, Ghavam ;
Thomas, Brian G. ;
Asle Zaeem, Mohsen .
METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 2020, 51 (05) :1875-1903
[4]  
Boyd S. P., 2014, Convex Optimization
[5]  
Brimacombe J.K., 1984, CONTINUOUS CASTING, V2
[6]  
Camisani-Calzolari F., 1999, IFAC PROC SER, V32, P7131
[7]   Phase diagram calculation: past, present and future [J].
Chang, YA ;
Chen, SL ;
Zhang, F ;
Yan, XY ;
Xie, FY ;
Schmid-Fetzer, R ;
Oates, WA .
PROGRESS IN MATERIALS SCIENCE, 2004, 49 (3-4) :313-345
[8]   Design and implementation of an automated secondary cooling system for the continuous casting of billets [J].
Chaudhuri, Subhasis ;
Singh, Rajeev Kumar ;
Patwari, Kuntal ;
Majumdar, Susanta ;
Ray, Asim Kumar ;
Singh, Arun Kumar Prasad ;
Neogi, Nirbhar .
ISA TRANSACTIONS, 2010, 49 (01) :121-129
[9]   The use of a heuristic search technique for the optimization of quality of steel billets produced by continuous casting [J].
Cheung, N ;
Garcia, A .
ENGINEERING APPLICATIONS OF ARTIFICIAL INTELLIGENCE, 2001, 14 (02) :229-238
[10]  
Cho KH, 2008, J MATER SCI TECHNOL, V24, P389