T. Imai et al., THE ESTIMATION OF CONVECTIVE HEAT-TRANSFER COEFFICIENTS BETWEEN A SPHERICAL-PARTICLE AND FLUID AT LOWER REYNOLDS-NUMBER, ISIJ international, 35(12), 1995, pp. 1438-1443
Convective heat transfer coefficients between a spherical particle and
fluid for two flow systems (solid-liquid, -gas) were measured and wer
e calculated with computer simulation at relatively low Reynolds numbe
rs, and the applicabilities of empirical equation, for example, Rant &
Marshall's equation, to the estimations of convective heat transfer c
oefficients of these systems were investigated. An aluminum sphere, 32
mm in diameter, which was kept at about 60 degrees C initially for so
lid-water system and at 30 degrees C for solid-air system, was dipped
into each fluid flow and the relationships between the Nusselt number,
Nu, and the Reynolds number, Re-p, were obtained. Convective heat tra
nsfer coefficients were calculated with computer simulation and were c
ompared with experimental results. For solid-water systems, convective
heat transfer coefficient was as large as the value estimated by Rant
& Marshall's equation for the range 300 < Re-p, but for lower Reynold
s number region, heat transfer coefficients were slightly larger than
the value calculated by Rant & Marshall's equation. Although Reynolds
number measured in solid-air system was small, heat transfer coefficie
nt was as large as ones calculated with following empirical equation.
Nu = 2.0 + 0.6 (PrRep1/2)-Re-1/3 + 0.43(PrGr)(1/4)