Role of appropriate permeability model on numerical prediction of macrosegregation

被引:0
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作者
A. K. Singh
B. Basu
A. Ghosh
机构
[1] the Tata Research Development and Design Centre,Corporate Technology Strategy and Services
[2] Tata Research Development and Design Centre,Department of Materials and Metallurgical Engineering
[3] Aditya Birla Management Corporation Limited,undefined
[4] Indian Institute of Technology,undefined
关键词
Material Transaction; Heat Mass Transfer; Liquid Fraction; Mushy Zone; Permeability Model;
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中图分类号
学科分类号
摘要
A continuum formulation based mathematical model was developed to predict macrosegregation during solidification of alloys and to investigate the role of permeability on macrosegregation. The model is based on the conservation of mass, momentum, energy, and solute. Darcy’s law was invoked to model the flow through the mushy region. The anisotropic nature of permeability was considered in the formulation of the model. Using the experimental data from the literature regarding macrosegregation in lead-tin alloys, commonly employed permeability models were assessed, and their inadequacies were demonstrated. The permeability model proposed by West, which is valid up to a very high liquid fraction of the mush and has some limitations, was generalized by incorporating a microstructural parameter into the model. Use of this generalized permeability model showed better agreement with the experimental data on the macrosegregation reported in the literature.
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页码:799 / 809
页数:10
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