Published August 2013 | Version v1
Journal article

Evaporation phenomenon past a rotating hydrocarbon droplet of ternary components

Description

Highlights: • Dgheim dimensionless number is created. • The spinning velocity does not strongly influence on Nusselt and Sherwood numbers. • The spinning velocity adjusts thermal and hydrodynamic boundary layers. • Nusselt number as function of thermal Dgheim number is proposed. • Sherwood number as function of mass Dgheim number is proposed. -- Abstract: A numerical study of heat and mass transfer from an evaporating fuel droplet rotating around its vertical axis was performed in forced convection only on the side opposite to the flow. The flow was assumed to be laminar, and the droplet was assumed to maintain its spherical shape during its lifetime. Based on the abovementioned assumption, the conservation equations in a general curvilinear coordinate were solved numerically. The behavior of rotating droplet evaporation in the forced convection flow can be investigated by analyzing the effects of the rotation of the droplet on the evaporation process of multi-component hydrocarbons droplet. The droplet is simulated to behave as a hard sphere. The transfer equations are discretized using an implicit finite difference method. Thomas algorithm is used to solve the system of algebraic equations. Moreover, dimensionless parameters of heat and mass transfer phenomena around a rotating hydrocarbon droplet were determined. The thickness of the boundary layer is unknown for this model and therefore, it was determined in function of time. Additionally, the study concerns "Dgheim dimensionless number" which is the ratio of the rotation forces over the viscosity forces. Dgheim dimensionless number is correlated to Nusselt and Sherwood numbers for multi-component hydrocarbon droplets in evaporation by taking into account the effect of heat and mass Spalding, Prandtl and Schmidt numbers respectively. Also, correlations for Nusselt and Sherwood numbers in terms of Reynolds, Prandtl and Schmidt numbers are proposed. These correlations consider the rotation phenomenon and advance the variation of the thermophysical and transport properties in the vapor phase of multi-component blends

Availability note (English)

Available from http://dx.doi.org/10.1016/j.ijheatfluidflow.2013.04.001

Additional details

Identifiers

DOI
10.1016/j.ijheatfluidflow.2013.04.001;
PII
S0142-727X(13)00074-X;

Publishing Information

Journal Title
International Journal of Heat and Fluid Flow
Journal Volume
42
Journal Page Range
p. 224-235
ISSN
0142-727X
CODEN
IJHFD2

Optional Information

Copyright
Copyright (c) 2013 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.