Impact on Solidification Dendrite Growth by Interfacial Atomic Motion Time with Phase Field Method
Yu Zhao, Wei Jin Liu, Hua Hou, Yu Hui Zhao
Abstract
Yu Zhao, Wei Jin Liu, Hua Hou, Yu Hui Zhao
Abstract
The Phase Field model of solidification processes was carried out coupled with temperature field model. The influence of interface atomic time on dendrite growth morphology in undercooled melt was simulated with pure nickel. The experimental results show that when the interface atomic motion time parameter is minor, the liquid-solid interfaces were unstable, disturbance can be amplified easily so the complicated side branches will grow, and the disturbance speed up the dendrite growth. With the increase of , the liquid-solid interfaces become more stable and finally the smooth dendrite morphology can be obtained.
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The Phase Field model of solidification processes was carried out coupled with temperature field model. The influence of interface atomic time on dendrite growth morphology in undercooled melt was simulated with pure nickel. The experimental results show that when the interface atomic motion time parameter is minor, the liquid-solid interfaces were unstable, disturbance can be amplified easily so the complicated side branches will grow, and the disturbance speed up the dendrite growth. With the increase of , the liquid-solid interfaces become more stable and finally the smooth dendrite morphology can be obtained.
Key concepts: Dendrite (mathematics), Materials science, Phase (matter), Morphology (biology), Field (mathematics), Mechanics, Supercooling, Disturbance (geology)