Criteria for revealing the onset and severity of solute inhomogeneity during directional solidification

IF 5 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Changjun Wang , Zhongqiu Liu , Baokuan Li , Zhihe Dou
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Abstract

Understanding and predicting the interplay between non-equilibrium flow dynamics and solidification behavior is pivotal for enhancing solute homogeneity in alloy solidification. This study employs a multiphase solidification model to simulate directional solidification processes under varying forced convection intensities and cooling rates. The model demonstrated robust predictive capabilities for columnar growing direction, channel segregation, and macrosegregation distribution. Building upon the method of the Rayleigh number (Ra), two dimensionless parameters, ChRa and Chg, were formulated to characterize the state of interdendritic phase forces at the solidification front, including gravitational, thermosolutal buoyancy, and drag forces. A third parameter, Chv, was defined as the ratio of liquid flow velocity to columnar tip growth velocity. Combined with the Womersley number (Wo), which quantifies vortex shedding frequency in cylindrical flows, the correlations between these four dimensionless criteria and solute segregation were analyzed. Results revealed that Chv and Wo exhibited strong correlations with segregation severity, while ChRa and Chg showed limited predictive utility. All criteria followed a similar evolutionary trajectory, aligning temporally with the formation of segregated channels in the ingot. Channel segregation ceased entirely when the maximum Wo value decreased to the critical range of 0.03–0.13 in this paper. These findings demonstrated that dimensionless criteria quantifying perturbations in interfacial flow and dendritic growth kinetics not only predicted the onset of segregated channels but also assessed the severity of solute inhomogeneity. This work establishes a novel dimensionless framework for predicting solute inhomogeneity, offering insights for optimizing solidification processes in casting applications.
指示定向凝固过程中溶质不均匀的开始和严重程度的标准
了解和预测非平衡流动动力学与凝固行为之间的相互作用是提高合金凝固过程中溶质均匀性的关键。本研究采用多相凝固模型模拟不同强制对流强度和冷却速率下的定向凝固过程。该模型对柱状生长方向、通道偏析和宏观偏析分布具有强大的预测能力。基于瑞利数法(Ra),建立了表征凝固前沿枝晶间力状态的两个无维参数ChRa和Chg,包括重力、热溶质浮力和阻力。第三个参数Chv被定义为液体流动速度与柱状尖端生长速度之比。结合量化圆柱形流动中旋涡脱落频率的沃默斯利数(Wo),分析了这四个无量纲准则与溶质偏析的相关性。结果显示Chv和Wo与隔离严重程度有很强的相关性,而ChRa和Chg的预测效用有限。所有的标准都遵循类似的进化轨迹,与铸锭中分离通道的形成在时间上一致。当最大Wo值降至0.03-0.13的临界范围时,沟道偏析完全停止。这些发现表明,量化界面流动和枝晶生长动力学扰动的无量纲标准不仅可以预测分离通道的开始,还可以评估溶质不均匀性的严重程度。这项工作为预测溶质不均匀性建立了一个新的无量纲框架,为优化铸造应用中的凝固过程提供了见解。
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来源期刊
CiteScore
10.30
自引率
13.50%
发文量
1319
审稿时长
41 days
期刊介绍: International Journal of Heat and Mass Transfer is the vehicle for the exchange of basic ideas in heat and mass transfer between research workers and engineers throughout the world. It focuses on both analytical and experimental research, with an emphasis on contributions which increase the basic understanding of transfer processes and their application to engineering problems. Topics include: -New methods of measuring and/or correlating transport-property data -Energy engineering -Environmental applications of heat and/or mass transfer
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