Back to Search Start Over

Roughness effect on the heat transfer coefficient for gaseous flow in microchannels

Authors :
Kakaç, Sadık
Turgay, M. B.
Yazıcıoğlu, Almila Güvenç
Kakaç, Sadık
Turgay, M. B.
Yazıcıoğlu, Almila Güvenç
Publication Year :
2021

Abstract

Effects of surface roughness, axial conduction, viscous dissipation, and rarefaction on heat transfer in a two - dimensional parallel plate microchannel with constant wall temperature are investigated numerically. Roughness is simulated by adding equilateral triangular obstructions with various heights on one of the plates. Air, with constant thermophysical properties, is chosen as the working fluid, and laminar, single-phase, developing flow in the slip flow regime at steady state is analyzed. Governing equations are solved by finite element method with tangential slip velocity and temperature jump boundary conditions to observe the rarefaction effect in the microchannel. Viscous dissipation effect is analyzed by changing the Brinkman number, and the axial conduction effect is analyzed by neglecting and including the corresponding term in the energy equation separately. Then, the effect of surface roughness on the Nusselt number is observed by comparing with the corresponding smooth channel results. It is found that Nusselt number decreases in the continuum case with the presence of surface roughness, while it increases with increasing roughness height in the slip flow regime, which is also more pronounced at low-rarefied flows (i.e., around Kn = 0.02). Moreover, the presence of axial conduction and viscous dissipation has increasing effects on heat transfer with increasing roughness height. Even in low velocity flows, roughness increases Nusselt number up to 33% when viscous dissipation is considered. © 2010 by ASME.<br />Heat Transfer Division

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1426269906
Document Type :
Electronic Resource