Laminar Film Condensation on a Nanosphere

Author:

Esfahani J. A.1,Koohi-Fayegh S.1

Affiliation:

1. Center of Excellence on Modelling and Control Systems (CEMCS), Mechanical Engineering Department, Ferdowsi University of Mashhad, P.O. Box 91775-1111, Mashhad, Iran

Abstract

The present work investigates an analytical study on the problem of laminar film condensation on a nanosphere. Due to the microscale interaction, the problem is analyzed by taking into account the effects of slip in velocity and jump in temperature. A relation is derived for the liquid film thickness in the form of a nonlinear differential equation which is solved numerically using the fourth order Runge–Kutta method. Finally, the effect of velocity slip and temperature jump on different condensation parameters including the liquid film thickness, velocity and temperature profiles, Nusselt number, and liquid mass flow rate is discussed. It is found that the increase in the velocity slip and temperature jump results in a thinner liquid film and therefore increases the heat transfer coefficient.

Publisher

ASME International

Subject

Electrical and Electronic Engineering,General Materials Science,General Medicine

Reference26 articles.

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3. MEMS for Pressure Distribution Studies of Gaseous Flows in Microchannels;Liu

4. A Numerical Study of Single-Phase Convective Heat Transfer in Microtubes for Slip Flow;Sun;Int. J. Thermal Sci.

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