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Dendrite growth characteristics within liquid Fe-Sb alloy

Dendrite growth characteristics within liquid Fe-Sb alloy
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摘要 Bulk samples and small droplets of liquid Fe-10%Sb alloys are undercooled up to 429 K (0.24TL) and 568 K (0.32TL), respectively, with glass fluxing and free fall techniques. The high undercooling does not change the phase constitution, and only the αFe solid solution is found in the rapidly solidified alloy. The experimental results show that when the undercooling is below 296 K, the growth velocity of αFe dendrite rises exponentially with the increase of undercooling and reaches a maximum value 1.38 m/s. Subsequently, the growth velocity begins to decrease if undercooling further increases. The αFe phase grows into coarse dendrites under small undercooling conditions, whereas it becomes vermicular dendrites in highly undercooled melts. The solute trapping is closely related to the dendrite growth velocity and cooling rate rather than undercooling. Although the solute trapping can be remarkably suppressed by the rapid dendrite growth, the segregationless solidification is not observed in the present experiments due to the large solidification temperature range. Bulk samples and small droplets of liquid Fe-10%Sb alloys are undercooled up to 429 K (0.24T L) and 568 K (0.32T L), respectively, with glass fluxing and free fall techniques. The high undercooling does not change the phase constitution, and only the αFe solid solution is found in the rapidly solidified alloy. The experimental results show that when the undercooling is below 296 K, the growth velocity of αFe dendrite rises exponentially with the increase of undercooling and reaches a maximum value 1.38 m/s. Subsequently, the growth velocity begins to decrease if undercooling further increases. The αFe phase grows into coarse dendrites under small undercooling conditions, whereas it becomes vermicular dendrites in highly undercooled melts. The solute trapping is closely related to the dendrite growth velocity and cooling rate rather than undercooling. Although the solute trapping can be remarkably suppressed by the rapid dendrite growth, the segregationless solidification is not observed in the present experiments due to the large solidification temperature range.
出处 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS 2009年第5期720-728,共9页 中国科学:物理学、力学、天文学(英文版)
基金 Supported by the National Natural Science Foundation of China (Grant Nos. 50121101 and 50395105)
关键词 LIQUID PHYSICS DENDRITE growth SOLUTE distribution segregationless SOLIDIFICATION liquid physics dendrite growth solute distribution segregationless solidification
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