Abstract
A transparent model alloy, succinonitrile-0.93 wt. salol is unidirectionally solidified under the accurately controled experimental conditions to investigate the selection of initial perturbation wave-length of a planar interface. The experimental data are compared with the Mullins-Sekerka (M-S) theory and the Warren-Langer (W-L) model. The following results are obtained: (1) Some experimental points do not lie within the wavelength range predicted by the M-S theory when Vcms< Ve< 1.57 Vcms, where Ve is the pulling velocity, Vcms is the critical instability velocity of a planar interface given by M-S theory. When Ve≫1.57 Vcms, the experimental points are all within the wavelength range, but several times larger than the wavelength with the fastest amplitude developing speed predicted by the M-S theory. In short, the M-S theory cannot be used effectively to predict the selection of the initial perturbation wavelength of a planar interface. (2) The experimental results obtained in different alloys are all in good agreement with the W-L model, which proves that the initial perturbation of a planar interface is generated by the dramatic amplification of the ambient thermal micro-fluctuation with a characteristic wavelength.
Original language | English |
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Pages (from-to) | 1247-1248 |
Number of pages | 2 |
Journal | Wuli Xuebao/Acta Physica Sinica |
Volume | 46 |
Issue number | 6 |
State | Published - 1997 |