Jk. Kim et Pk. Rohatgi, AN ANALYTICAL SOLUTION OF THE CRITICAL INTERFACE VELOCITY FOR THE ENCAPTURING OF INSOLUBLE PARTICLES BY A MOVING SOLID LIQUID INTERFACE/, Metallurgical and materials transactions. A, Physical metallurgy andmaterials science, 29(1), 1998, pp. 351-358
An analytical model for the particle pushing phenomenon that occurs be
tween spherical particles and advancing curved solid/liquid interfaces
during solidification of pure melts is presented. An expression for t
he critical interface velocity for encapturing particles by moving sol
id/liquid interfaces has been developed for the steady-state condition
. As a first step, the actual shape of the interface behind the partic
le is computed in terms of the thermal conductivity ratio of the parti
cle to that of the melt and the temperature gradient ahead of the inte
rface; based on assumed subject, the critical interface velocity is ca
lculated using the force balance between the attractive forces and rep
ulsive forces acting on the particle. The critical interface velocity
under steady-state conditions in aluminum containing SIC particle (10
mu m) comes out to be 5800 mu m/s according to the present model; this
calculated velocity is much closer to the experimental observations o
f Wu et al., as compared to the predictions of the models proposed by
earlier workers.