Numerical Study on the Effects of Variable Mushy Zone Constants on Fluid Flow and Heat Transfer in Bloom Mold

IF 1.9 3区 材料科学 Q2 METALLURGY & METALLURGICAL ENGINEERING steel research international Pub Date : 2024-07-29 DOI:10.1002/srin.202400327
Cheng Yao, Min Wang, Li Cao, Lidong Xing, Kai Li, Boteng Wang, Jian Song, Daichun Wei, Yanping Bao
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Abstract

In previous studies, the mushy zone constant was assigned a fixed value or a value associated with dendrite characteristics at room temperature. However, elucidating the constitutive behaviors of mushy dendrites at high temperatures using solid dendrite characteristics at room temperature poses challenges. In this study, a numerical model was constructed to investigate the effects of variable mushy zone constants on fluid flow and heat transfer in the mold. The results revealed that “Zone Z‐1/2” exhibited a thinner solidified shell compared with the other zones, indicating a close correlation between heat transfer and thickness differences. Under default simulation conditions, the liquid steel cooled rapidly, leading to the dissipation of superheat. The mushy zone exhibited a wide range, with almost no pure liquid phase present in the mold. In cases 2, 3, and 4 within “Zone Z‐1/2”, the average thickness of the solidified shell gradually increased during solidification, indicating the absence of evident remelting phenomena in the mold. As the variable mushy zone constants increased, the local temperature gradient increased, while the local cooling rate decreased. The accuracy of the numerical model was validated through actual measurements and empirical formulas. The simulation results for case 4 exhibited a high degree of fitting.
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关于可变湿区常数对 Bloom 模具中流体流动和传热影响的数值研究
在以往的研究中,蘑菇状区域常数被指定为一个固定值或一个与室温下树枝状晶特征相关的值。然而,利用室温下的固体枝晶特征来阐明高温下蘑菇状枝晶的构成行为是一项挑战。本研究构建了一个数值模型,以研究可变蘑菇状区域常数对模具中流体流动和热传递的影响。结果显示,与其他区域相比,"Z-1/2 区 "的凝固壳更薄,这表明传热与厚度差异之间存在密切联系。在默认的模拟条件下,钢液迅速冷却,导致过热散失。粘稠区的范围很大,模具中几乎没有纯液相。在 "Z-1/2 区 "的情况 2、3 和 4 中,凝固壳的平均厚度在凝固过程中逐渐增加,表明模具中没有明显的重熔现象。随着可变粘稠区常数的增加,局部温度梯度增大,而局部冷却速率降低。通过实际测量和经验公式验证了数值模型的准确性。情况 4 的模拟结果显示出高度的拟合性。
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来源期刊
steel research international
steel research international 工程技术-冶金工程
CiteScore
3.30
自引率
18.20%
发文量
319
审稿时长
1.9 months
期刊介绍: steel research international is a journal providing a forum for the publication of high-quality manuscripts in areas ranging from process metallurgy and metal forming to materials engineering as well as process control and testing. The emphasis is on steel and on materials involved in steelmaking and the processing of steel, such as refractories and slags. steel research international welcomes manuscripts describing basic scientific research as well as industrial research. The journal received a further increased, record-high Impact Factor of 1.522 (2018 Journal Impact Factor, Journal Citation Reports (Clarivate Analytics, 2019)). The journal was formerly well known as "Archiv für das Eisenhüttenwesen" and "steel research"; with effect from January 1, 2006, the former "Scandinavian Journal of Metallurgy" merged with Steel Research International. Hot Topics: -Steels for Automotive Applications -High-strength Steels -Sustainable steelmaking -Interstitially Alloyed Steels -Electromagnetic Processing of Metals -High Speed Forming
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