Title of article
Length scales in phase coarsening: Theory, simulation, and experiment
Author/Authors
Wang، نويسنده , , K.G. and Glicksman، نويسنده , , M.E. and Rajan، نويسنده , , K.، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2005
Pages
19
From page
235
To page
253
Abstract
The collective interactions occurring within a population of spherical precipitates dispersed throughout a contiguous matrix may be described on the basis of a diffusion screening length. This critical length scale is derived from the quasi-static theory of diffusion-limited phase coarsening of spherical precipitates. This theory predicts as functions of the dispersoid volume fraction the changes in diffusion screening length, the maximum particle size, the population’s coarsening rate, and, finally, the affine particle-size distribution. Furthermore, by considering fluctuations observed in the growth rates of individual particles, we formulate a stochastic theory of phase coarsening. Results obtained from simulating phase coarsening using multiparticle diffusion approaches and phase field model are then compared to the kinetic theories. Finally, particle-size distributions and the maximum radii predicted from theory and simulations are shown to agree well with experimental results obtained from measurements performed on δ′ (Al3Li) precipitates in binary Al–Li alloys.
Keywords
Diffusion screening , Phase field simulation , Fokker–Planck equation , Phase coarsening , Al–Li alloys , Multiparticle diffusion simulation
Journal title
Computational Materials Science
Serial Year
2005
Journal title
Computational Materials Science
Record number
1680953
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