2000•Acta Metallurgica SinicaRequires access

SIMULATION OF EQUIAXED DENDRITIC GROWTH OF A PURE MATERIAL USING PHASE FIELD METHOD

Zhang Yutu, Pang Weichen, Yutuo Zhang

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Abstract

The equiaxed dendrite evolution during the solidification of a pure material was numerically simulated using the phase field model. The equiaxed dendritic growth in a 2-D square region of undercooled liquid nickel with four fold anisotropy was computed. The phase field model equations have been solved using the explicit finite difference method on an uniform mesh. The formation of various equiaxed dendritic patterns was shown by a series of simulation.

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What this paper is about

The equiaxed dendrite evolution during the solidification of a pure material was numerically simulated using the phase field model. The equiaxed dendritic growth in a 2-D square region of undercooled liquid nickel with four fold anisotropy was computed. The phase field model equations have been solved using the explicit finite difference method on an uniform mesh. The formation of various equiaxed dendritic patterns was shown by a series of simulation.

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Available abstract

The equiaxed dendrite evolution during the solidification of a pure material was numerically simulated using the phase field model. The equiaxed dendritic growth in a 2-D square region of undercooled liquid nickel with four fold anisotropy was computed. The phase field model equations have been solved using the explicit finite difference method on an uniform mesh. The formation of various equiaxed dendritic patterns was shown by a series of simulation.

Key concepts: Equiaxed crystals, Dendrite (mathematics), Materials science, Anisotropy, Phase (matter), Field (mathematics), Thermodynamics, Mechanics

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