Simulation and experimental validation of the effect of superheat on macrosegregation in large-size steel ingots

被引:11
作者
Zhang, C. [1 ]
Jahazi, M. [1 ]
Tremblay, R. [2 ]
机构
[1] Ecole Technol Super, Mech Engn Dept, 1100 Notre Dame St West, Montreal, PQ H3C 1K3, Canada
[2] Finid Steel Sorel, 100 McCarthy St, St Joseph De Sorel, PQ J3R 3M8, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Finite element modeling; Large-size ingot; Steel; Superheat; Solidification; Macrosegregation; NUMERICAL-SIMULATION; SOLIDIFICATION; SEGREGATION; MICROSEGREGATION; SHRINKAGE; MECHANISM; PART;
D O I
10.1007/s00170-020-05044-z
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
A 3D model was employed to study the effect of melt initial superheat on the macrosegregation formation using FE modeling and experimentation methods. The casting process of three ingots with the initial melt superheats of 75 degrees C, 65 degrees C, and 55 degrees C were simulated. The three cases represented three variables encountered in industry during casting of large size ingots. For the above three studied cases, all other casting conditions were kept the same. Results showed that the variation of initial melt superheat gave rise to changes in temperature pattern, liquid flow field, solidification speed, and thermomechanical contraction. Under the combined actions of all these changes, lower superheat tended to alleviate the segregation intensity in the upper part of the ingot body, in the hot-top, and in the solute-rich bands between the ingot centerline and periphery. The beneficial effect of lower superheat on alleviation of segregation severity was confirmed by experimental chemical measurement results. The results were analyzed in terms of heat and mass transfer theories and allow for a better understanding of the underlying mechanisms responsible for the occurrence of macrosegregation in ingot casting process. The findings should be helpful for the casting process design of a given ingot of high value-added steels or other alloys.
引用
收藏
页码:167 / 175
页数:9
相关论文
共 28 条
[1]  
[Anonymous], THERCAST 8 2
[2]  
Becker W.T., 2002, ASM HDB, V11
[3]  
Campbell J, 2011, COMPLETE CASTING HANDBOOK: METAL CASTING PROCESSES, METALLURGY, TECHNIQUES AND DESIGN, VOL 1 AND 2, P1013, DOI 10.1016/B978-1-85617-809-9.10017-9
[4]   Morphology and segregation in continuously cast high carbon steel billets [J].
Choudhary, S. K. ;
Ganguly, Suvankar .
ISIJ INTERNATIONAL, 2007, 47 (12) :1759-1766
[5]   Experimental Measurements for Numerical Simulation of Macrosegregation in a 36-Ton Steel Ingot [J].
Duan, Zhenhu ;
Tu, Wutao ;
Shen, Bingzhen ;
Shen, Houfa ;
Liu, Baicheng .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2016, 47A (07) :3597-3606
[6]   Effect of the Geometry of an Ingot on its Chemical Heterogeneity. Part I [J].
Dub, V.S. ;
Romashkin, A.N. ;
Mal’ginov, A.N. ;
Ivanov, I.A. ;
Tolstykh, D.S. .
Metallurgist, 2014, 57 (11-12) :987-995
[7]   On the mechanism of natural convection and equiaxed structure during dendritic solidification processes [J].
Ei-Bealy, M. O. ;
Hammouda, R. M. .
STEEL RESEARCH INTERNATIONAL, 2007, 78 (08) :602-611
[8]   Effects of melt temperature and casting speed on the structure and defect formation during direct-chill casting of an Al-Cu alloy [J].
Eskin, DG ;
Savran, VI ;
Katgerman, L .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2005, 36A (07) :1965-1976
[9]   Effect of chilling of the top part of a steel ingot on the conditions of its crystallization and the quality of forgings obtained from it [J].
Galkin, A. N. ;
Zyuban, N. A. ;
Rutskii, D. V. ;
Gamanyuk, S. B. ;
Puzikov, A. Ya. ;
Firsenko, V. V. .
METALLURGIST, 2013, 57 (3-4) :199-206
[10]   Numerical Simulation of V-shaped Segregation in Continuous Casting Blooms Based on a Microsegregation Model [J].
Guan, Rui ;
Ji, Cheng ;
Zhu, Miaoyong ;
Deng, Shimin .
METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 2018, 49 (05) :2571-2583