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Computed growth interface shapes and growth velocities agree with experimental observations.
Heterogeneous charge distributions on the substrate are found to lead to steady curved interface shapes.
Numerical results of interface shapes and contact angles agree well with theoretical solutions.
A unifying idea is presented for the engineering of convex melt-solid interface shapes in Bridgman crystal growth systems.
In this section we show how to treat other simple interface shapes, namely rings, fronts and stripes, and determine their stability.
Numerical results of interface shapes and flow properties agree well with both analytical solutions and benchmark data in the literature.
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The interface shape and macrostructure were investigated.
The evaporating solution features an air-water interface shaped like a spherical cap.
The data are organized in four layers: structural, assembly interface, shape and statistic layers.
The interface shape can be influenced by forced convection using travelling magnetic fields.
Temperature distribution in the furnace, S/L interface shape and melt flow are simulated.
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