
东北大学学报(自然科学版) ›› 2026, Vol. 47 ›› Issue (1): 138-144.DOI: 10.12068/j.issn.1005-3026.2026.20240132
收稿日期:2024-06-11
出版日期:2026-01-15
发布日期:2026-03-17
通讯作者:
李宝宽
作者简介:曹 平(1999—),女,山东德州人,东北大学硕士研究生.
基金资助:
Ping CAO1, Chang-jun WANG1, Bao-kuan LI1(
), Zheng-jie FAN2
Received:2024-06-11
Online:2026-01-15
Published:2026-03-17
Contact:
Bao-kuan LI
摘要:
针对连铸坯凝固均匀性及表面缺陷控制问题,本文建立了电磁搅拌和电磁制动复合磁场调控下的结晶器流动与凝固预测数学模型,利用WALE(wall-adapting local eddy-viscosity)大涡模拟方法以及一种简化的夹杂物捕捉准则,分析复合磁场调控对铸坯表面缺陷的控制机理.研究结果表明:夹杂物颗粒的捕捉位置主要出现在铸坯的外表层,复合磁场下宽面和窄面的凝固壳厚度之差比无电磁调控时降低了4.59%,复合磁场下夹杂物捕捉总量比无磁场时减少了47.21%.研究表明,电磁制动主要抑制凝固壳内夹杂物的捕捉,电磁搅拌的核心作用是促进流动和凝固均匀性.
中图分类号:
曹平, 王长军, 李宝宽, 范正洁. 复合磁场下板坯连铸结晶器夹杂物颗粒的捕捉[J]. 东北大学学报(自然科学版), 2026, 47(1): 138-144.
Ping CAO, Chang-jun WANG, Bao-kuan LI, Zheng-jie FAN. Inclusion Particles Capture in Slab Continuous Casting Mold Under Composite Magnetic Fields[J]. Journal of Northeastern University(Natural Science), 2026, 47(1): 138-144.
| 物性参数 | 数值 |
|---|---|
| 密度/(kg·m-3) | 7 100 |
| 比热容/(J·kg-1·K-1) | 710 |
| 热导率/(W·m-1·K-1) | 43 |
| 黏度/(kg·m-1·s-1) | 0.004 71 |
| 相变潜热/(J·kg-1) | 270 000 |
| 电导率/(S·m-1) | 714 000 |
| 固相线温度/K | 1 760 |
| 液相线温度/K | 1 787 |
表1 钢液的物性参数
Table 1 Physical property parameters of molten steel
| 物性参数 | 数值 |
|---|---|
| 密度/(kg·m-3) | 7 100 |
| 比热容/(J·kg-1·K-1) | 710 |
| 热导率/(W·m-1·K-1) | 43 |
| 黏度/(kg·m-1·s-1) | 0.004 71 |
| 相变潜热/(J·kg-1) | 270 000 |
| 电导率/(S·m-1) | 714 000 |
| 固相线温度/K | 1 760 |
| 液相线温度/K | 1 787 |
| 参数 | 数值 |
|---|---|
| 结晶器尺寸/mm | 1 450×250 |
| 结晶器工作高度/mm | 800 |
| 结晶器延伸高度/mm | 2 500 |
| 浸入式水口内径/mm | 80 |
| 浸入式水口外径/mm | 130 |
| 浸入式水口浸入深度/mm | 211.5 |
| 浸入式水口出口尺寸/mm | 80×65 |
| 浸入式水口倾角/(°) | -15 |
| 通钢量/(t·min-1) | 4 |
| 吹氩量/(L·min-1) | 10 |
| 结晶器宽面单面冷却水流量/(m3·min-1) | 2.8 |
| 结晶器窄面单面冷却水流量/(m3·min-1) | 0.46 |
| 电磁搅拌频率/Hz | 4.5 |
| 电磁搅拌电流强度/A | 600 |
| 电磁制动电流强度/A | 500 |
| 电磁搅拌线圈匝数/匝 | 20 |
| 电磁制动线圈匝数/匝 | 100 |
表2 主要尺寸及参数
Table 2 Main dimensions and parameters
| 参数 | 数值 |
|---|---|
| 结晶器尺寸/mm | 1 450×250 |
| 结晶器工作高度/mm | 800 |
| 结晶器延伸高度/mm | 2 500 |
| 浸入式水口内径/mm | 80 |
| 浸入式水口外径/mm | 130 |
| 浸入式水口浸入深度/mm | 211.5 |
| 浸入式水口出口尺寸/mm | 80×65 |
| 浸入式水口倾角/(°) | -15 |
| 通钢量/(t·min-1) | 4 |
| 吹氩量/(L·min-1) | 10 |
| 结晶器宽面单面冷却水流量/(m3·min-1) | 2.8 |
| 结晶器窄面单面冷却水流量/(m3·min-1) | 0.46 |
| 电磁搅拌频率/Hz | 4.5 |
| 电磁搅拌电流强度/A | 600 |
| 电磁制动电流强度/A | 500 |
| 电磁搅拌线圈匝数/匝 | 20 |
| 电磁制动线圈匝数/匝 | 100 |
| 条件 | 宽面出口凝固壳厚度 | 窄面出口凝固壳厚度 | 宽与窄面厚度差值 |
|---|---|---|---|
| 无磁场 | 37.77 | 27.97 | 9.80 |
| 电磁制动 | 37.97 | 28.28 | 9.69 |
| 电磁搅拌 | 37.01 | 27.67 | 9.34 |
| 复合磁场 | 37.50 | 28.15 | 9.35 |
表3 结晶器出口凝固壳厚度 (mm)
Table 3 Solidified shell thickness at outlet of mold
| 条件 | 宽面出口凝固壳厚度 | 窄面出口凝固壳厚度 | 宽与窄面厚度差值 |
|---|---|---|---|
| 无磁场 | 37.77 | 27.97 | 9.80 |
| 电磁制动 | 37.97 | 28.28 | 9.69 |
| 电磁搅拌 | 37.01 | 27.67 | 9.34 |
| 复合磁场 | 37.50 | 28.15 | 9.35 |
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