Acta Metallurgica Sinica (English Letters) ›› 2015, Vol. 28 ›› Issue (9): 1123-1133.DOI: 10.1007/s40195-015-0303-z
• Orginal Article • Previous Articles Next Articles
Zhen-Hu Duan1,2(), Hou-Fa Shen1,2, Bai-Cheng Liu1,2
Received:
2015-02-09
Revised:
2015-07-13
Online:
2015-08-12
Published:
2015-09-20
Zhen-Hu Duan, Hou-Fa Shen, Bai-Cheng Liu. A Numerical Study of the Effect of Multiple Pouring on Macrosegregation in a 438-Ton Steel Ingot[J]. Acta Metallurgica Sinica (English Letters), 2015, 28(9): 1123-1133.
Add to citation manager EndNote|Ris|BibTeX
Mass | ρ∂a q ∂t +ρu ¯ ⋅? 0 ⋅a p =0 | (1) |
---|---|---|
Momentum | ∂ρ m u∂t +?⋅(ρ m uu)=-?p+?⋅(μ eff ?u)+ρ m g | (2) |
Realizable k-ε | ∂ρ m k∂t +?⋅(ρ m uk)∂ρ m ε∂t +?⋅(ρ m uε) =?⋅(u+u eff σ k )?k+G k -ρ m =? 0 ⋅(u+u t σ ε )?ε 0 +ρ m C 1 Eε-ρ m C 2 ε 2 k+νε - - √ | (3) |
Energy | ∂ρ m T∂t +?⋅(ρ m uT)=?⋅(k eff c p ?T) | (4) |
Species | ∂ρ m C∂t +?⋅(ρ m uC)=?⋅(D eff ?C) | (5) |
Table 1 Conservation equations used in mathematical model for the mixing in tundish.
Mass | ρ∂a q ∂t +ρu ¯ ⋅? 0 ⋅a p =0 | (1) |
---|---|---|
Momentum | ∂ρ m u∂t +?⋅(ρ m uu)=-?p+?⋅(μ eff ?u)+ρ m g | (2) |
Realizable k-ε | ∂ρ m k∂t +?⋅(ρ m uk)∂ρ m ε∂t +?⋅(ρ m uε) =?⋅(u+u eff σ k )?k+G k -ρ m =? 0 ⋅(u+u t σ ε )?ε 0 +ρ m C 1 Eε-ρ m C 2 ε 2 k+νε - - √ | (3) |
Energy | ∂ρ m T∂t +?⋅(ρ m uT)=?⋅(k eff c p ?T) | (4) |
Species | ∂ρ m C∂t +?⋅(ρ m uC)=?⋅(D eff ?C) | (5) |
Mass | ?⋅u | (6) |
---|---|---|
Momentum | ρ∂u∂t +ρ?⋅(uu)=-?p+μ 1 ? 2 u-μ 1 K -1 u+ρ b g g | (7) |
Density in buoyancy term | ρ b =ρ[1-β T (T-T 0 )-β C (C 1 -C 0 )] | (8) |
Energy | ∂T∂t +?⋅(uT)=kρC p ? 2 T+Lc p ∂g s ∂t | (9) |
Species | ∂C∂t +?⋅(uC)=?⋅(g 1 D 1 ?C)+?⋅[g 1 D 1 ?(C 1 -C)]-?⋅[u(C 1 -C)]. | (10) |
Permeability | K=λ 2 180 g 3 1 (1-g 1 ) 2 | (11) |
Temperature and liquid concentration | T=T m +m 1 C 1 | (12) |
Solid volume fraction and temperature | g s =11-k p T-T 1 T-T m | (13) |
Table 2 Conservation equations used in the mathematical model for the macrosegregation in the mold.
Mass | ?⋅u | (6) |
---|---|---|
Momentum | ρ∂u∂t +ρ?⋅(uu)=-?p+μ 1 ? 2 u-μ 1 K -1 u+ρ b g g | (7) |
Density in buoyancy term | ρ b =ρ[1-β T (T-T 0 )-β C (C 1 -C 0 )] | (8) |
Energy | ∂T∂t +?⋅(uT)=kρC p ? 2 T+Lc p ∂g s ∂t | (9) |
Species | ∂C∂t +?⋅(uC)=?⋅(g 1 D 1 ?C)+?⋅[g 1 D 1 ?(C 1 -C)]-?⋅[u(C 1 -C)]. | (10) |
Permeability | K=λ 2 180 g 3 1 (1-g 1 ) 2 | (11) |
Temperature and liquid concentration | T=T m +m 1 C 1 | (12) |
Solid volume fraction and temperature | g s =11-k p T-T 1 T-T m | (13) |
Material | ρ (kg m-3) | k (W m-1 K-1) | c p (J kg-1 K-1) |
---|---|---|---|
Steel ingot | 6990 | 38.3 | 520 |
Mold | 7100 | 26.3 | 540 |
Insulation sleeve | 180 | 1.2 | 1020 |
Table 3 Thermophysical properties of the steel ingot and mold materials
Material | ρ (kg m-3) | k (W m-1 K-1) | c p (J kg-1 K-1) |
---|---|---|---|
Steel ingot | 6990 | 38.3 | 520 |
Mold | 7100 | 26.3 | 540 |
Insulation sleeve | 180 | 1.2 | 1020 |
k p | m l (K wt%-1) | β C (wt%-1) | β T (K-1) | L (kJ·kg-1) | μ l (Pa·s) | λ 2 (μm) | D l (m2·s-1) |
---|---|---|---|---|---|---|---|
0.314 | -80.45 | 1.4164 × 10-2 | 1.07 × 10-4 | 271 | 0.0042 | 500 | 2 × 10-8 |
Table 4 Steel properties used in the simulation
k p | m l (K wt%-1) | β C (wt%-1) | β T (K-1) | L (kJ·kg-1) | μ l (Pa·s) | λ 2 (μm) | D l (m2·s-1) |
---|---|---|---|---|---|---|---|
0.314 | -80.45 | 1.4164 × 10-2 | 1.07 × 10-4 | 271 | 0.0042 | 500 | 2 × 10-8 |
Fig. 7 Comparison of the carbon distribution along the ingot centerline between the SP and MP processes: a at 1.3 h; b at 4.2 h; c at 20 h; d at final solidification.
Fig. 8 Comparison of final macrosegregation with different riser insulating times: a 0 h (traditional mold riser); b insulating 10 h; c insulating 20 h; d insulating 30 h.
Fig. 9 Predicted solidification sequence of 438-ton steel ingot with riser insulating time of 30 h, the left part shows the solid volume fraction (g s), while the right shows the macrosegregation and liquid velocity: a at 1.7 h; b at 10 h; c at 30 h; d at 60 h.
Fig. 11 Time evolution of the carbon concentration and liquid velocity at the position P in case 1 and case 4: a carbon concentration, b velocity in horizontal; c velocity in vertical.
[1] | E.J. Pickering, ISIJ Int. 53, 935(2013) |
[2] | C. Beckermann, Int. Mater. Rev. 47, 243(2002) |
[3] | J. Ni, C. Beckermann, Metall. Mater. Trans. B 22, 349 (1991) |
[4] | C.Y. Wang, C. Beckermann, Metall. Mater. Trans. A 27, 2754 (1996) |
[5] | A. Ludwig, M. Wu, Mater. Trans. A 33, 3673 (2002) |
[6] | M. Wu, A. Ludwig, Metall. Mater. Trans. A 37, 1613 (2006) |
[7] | M. Wu, A. Fjeld, A. Ludwig, Comput. Mater. Sci. 50, 5621(2010) |
[8] | M. Wu, A. Ludwig, A. Fjeld, Comput. Mater. Sci. 50, 32(2010) |
[9] | H. Combeau, M. Zaloznik, S. Hans, P.E. Richy, Metall. Mater. Trans. B 40, 289 (2009) |
[10] | M. Zaloznik, H. Combeau, Comput. Mater. Sci. 48, 1(2010) |
[11] | W.S. Li, H.F. Shen, B.C. Liu, Int. J. Min. Metall. Mater. 19, 787(2012) |
[12] | J. Li, M. Wu, A. Ludwig, A. Kharicha, Int. J. Heat Mass Transf. 72, 668(2014) |
[13] | G. Lesoult, Mater. Sci. Eng., A 413-414, 19(2005) |
[14] | W.T. Tu, H.F. Shen, B.C. Liu, ISIJ Int. 54, 351(2014) |
[15] | M. Tateno, Iron Steel Inst. Jpn. Meet. 25, 97(1985) |
[16] | T. Yasuhiko, S. IKuo. J. Nucl. Mater. 417, 854(2011) |
[17] | J.W. Kang, C. Dong, X.K. Hao, G. Nie, H.F. Shen, B.C. Liu, ISIJ Int. 54, 275(2014) |
[18] | D.R. Liu, B.G. Sang, D.Z. Li, Int. J. Cast. Metal. Res. 23, 354(2010) |
[19] | W.T. Tu, X. Zhang, H.F. Shen, B.C. Liu, China Foundry 11, 52 (2014) |
[20] | ANSYS FLUENT 15.0, |
[21] | W.S. Li, H.F. Shen, B.C. Liu, Steel Res. Int. 81, 994(2011) |
[22] | D.J. Hebditch, J.D. Hunt, Metall. Trans. 5, 1557(1974) |
[1] | Kang-Xin Chen, Hou-Fa Shen. Numerical Simulation of Macrosegregation Caused by Thermal-Solutal Convection and Solidification Shrinkage Using ALE Model [J]. Acta Metallurgica Sinica (English Letters), 2019, 32(11): 1396-1406. |
[2] | Chetan P. Nikhare. Prediction of Springback in Long Channels [J]. Acta Metallurgica Sinica (English Letters), 2015, 28(12): 1525-1531. |
[3] | Zu-Qi Hu, Xin-Jian Zhang, Shu-Sen Wu. Microstructure, Mechanical Properties and Die-Filling Behavior of High-Performance Die-Cast Al-Mg-Si-Mn Alloy [J]. Acta Metallurgica Sinica (English Letters), 2015, 28(11): 1344-1353. |
[4] | Zhenmin WANG, Fang YAN,Pengcheng ZHAO. Numerical Simulation of the Dynamic Behaviors of a Gas Tungsten Welding Arc for Joining Magnesium Alloy AZ61A [J]. Acta Metallurgica Sinica (English Letters), 2013, 26(5): 588-596. |
[5] | Dean DENG, Yangang TONG, Ninshu MA, Hidekazu MURAKAWA. Prediction of the Residual Welding Stress in 2.25Cr-1Mo Steel by Taking into Account the Effect of the Solid-State Phase Transformations [J]. Acta Metallurgica Sinica (English Letters), 2013, 26(3): 333-339. |
[6] | Guoxiang XU, Chuansong WU, Xuezhou MA, Xuyou WANG. Numerical Analysis of Welding Residual Stress and Distortion in Laser+GMAW Hybrid Welding of Aluminum Alloy T-Joint [J]. Acta Metallurgica Sinica (English Letters), 2013, 26(3): 352-360. |
[7] | Junqiu ZHANG, Zhiwu HAN,Wei YIN, Huiyuan WANG,Chao GE, Jialian JIANG. Numerical Experiment of the Solid Particle Erosion of Bionic Configuration Blade of Centrifugal Fan [J]. Acta Metallurgica Sinica (English Letters), 2013, 26(1): 16-24. |
[8] | Wen ZHENG,Min WANG,Liang KONG,Xuanting CHENG,Ming LEI . Parameter optimization of dissimilar resistance spot welding on ultra-high strength hot-stamped steel and mild steel by numerical simulation [J]. Acta Metallurgica Sinica (English Letters), 2012, 25(6): 487-498. |
[9] | Prosenjit Das, Sudip K. Samanta, Himadri Chattopadhyay,Pradip Dutta. Effect of pouring temperature on cooling slope casting of semi-solid Al-Si-Mg alloy [J]. Acta Metallurgica Sinica (English Letters), 2012, 25(5): 329-339. |
[10] | Shude JI,AiliZOU, Yumei YUE, Guohong LUAN,Yanye JIN, Fu LI. Numerical simulation of effect of rotational tool with screw on material flow behavior of friction stir welding of Ti6Al4V alloy [J]. Acta Metallurgica Sinica (English Letters), 2012, 25(5): 365-373. |
[11] | Haichao CUI, Fenggui LU, Xinhua TANG,Shun YAO. Particles migration behavior during laser keyhole welding of ZL101/TiB2 composites [J]. Acta Metallurgica Sinica (English Letters), 2012, 25(3): 190-200. |
[12] | Dongrong LIU, Xiuhong KANG, Baoguang SANG, Dianzhong LI. Numerical study of macrosegregation formation of ingot cast in normal sand mold and water-cooled sand mold [J]. Acta Metallurgica Sinica (English Letters), 2011, 24(1): 54-64. |
[13] | Huaping TANG, Changqian HAO, Yongzheng JIANG, Lei DU. Forming process and numerical simulation of making upset on oil drill pipe [J]. Acta Metallurgica Sinica (English Letters), 2010, 23(1): 72-80. |
[14] | Haipeng JIN,Jiarong LI,Dong PAN. Application of inverse method to estimation of boundary conditions during investment casting simulation [J]. Acta Metallurgica Sinica (English Letters), 2009, 22(6): 429-434. |
[15] | Yongsheng WANG,Chenxi JI,Jiongming ZHANG,Xinhua WANG,Wanjun WANG. Investigation of the solute transportation coupled with heat transfer and fluid flow during twin-roll strip casting process [J]. Acta Metallurgica Sinica (English Letters), 2009, 22(5): 345-352. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||