行波磁场对高强钢板坯枝晶生长的影响:工业试验与数值模拟

IF 5.6 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY International Journal of Minerals, Metallurgy, and Materials Pub Date : 2023-08-25 DOI:10.1007/s12613-023-2629-2
Cheng Yao, Min Wang, Youjin Ni, Dazhi Wang, Haibo Zhang, Lidong Xing, Jian Gong, Yanping Bao
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引用次数: 0

摘要

研究了行波磁场作用下高强钢板坯连铸枝晶生长行为。分析了凝固组织的形貌和成分分布。结果表明,行波磁场在较低电流强度下,柱状晶体会发生偏转和破裂。随着电流强度的增大,二次枝晶臂间距和溶质渗透率减小,柱状晶向等轴晶转变。行波磁场产生的电磁力改变了温度梯度和速度大小,促进了枝晶的断裂和融合。枝晶致密性和成分均匀性由高到低依次为:柱状-等轴过渡(高电流强度)、柱状-等轴过渡(低电流强度)、柱状-等轴过渡(低电流强度)、等轴晶体区(高电流强度)。结合凝固前沿边界层理论和枝晶断裂-熔合模型,验证了数值模拟结果,揭示了枝晶偏转机理和生长过程。在不考虑热应力的情况下,在枝晶中不存在窄段的情况下,在枝晶断裂之前,钢液凝固前沿的速度量级可达0.041 m/s。
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Effect of traveling-wave magnetic field on dendrite growth of high-strength steel slab: Industrial trials and numerical simulation

The dendrite growth behavior of high-strength steel during slab continuous casting with a traveling-wave magnetic field was studied in this paper. The morphology of the solidification structure and composition distribution were analyzed. Results showed that the columnar crystals could deflect and break when the traveling-wave magnetic field had low current intensity. With the increase in current intensity, the secondary dendrite arm spacing and solute permeability decreased, and the columnar crystal transformed into an equiaxed crystal. The electromagnetic force caused by the traveling-wave magnetic field changed the temperature gradient and velocity magnitude and promoted the breaking and fusing of dendrites. Dendrite compactness and composition uniformity were arranged in descending order as follows: columnar-to-equiaxed transition (high current intensity), columnar crystal zone (low current intensity), columnar-to-equiaxed transition (low current intensity), and equiaxed crystal zone (high current intensity). Verified numerical simulation results combined with the boundary layer theory of solidification front and dendrite breaking–fusing model revealed the dendrite deflection mechanism and growth process. When thermal stress is not considered, and no narrow segment can be found in the dendrite, the velocity magnitude on the solidification front of liquid steel can reach up to 0.041 m/s before the dendrites break.

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来源期刊
CiteScore
9.30
自引率
16.70%
发文量
205
审稿时长
2 months
期刊介绍: International Journal of Minerals, Metallurgy and Materials (Formerly known as Journal of University of Science and Technology Beijing, Mineral, Metallurgy, Material) provides an international medium for the publication of theoretical and experimental studies related to the fields of Minerals, Metallurgy and Materials. Papers dealing with minerals processing, mining, mine safety, environmental pollution and protection of mines, process metallurgy, metallurgical physical chemistry, structure and physical properties of materials, corrosion and resistance of materials, are viewed as suitable for publication.
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