Title of article :
Frictional pressure drop during vapour–liquid flow in minichannels: Modelling and experimental evaluation
Author/Authors :
Cavallini، نويسنده , , A. and Del Col، نويسنده , , D. and Matkovic، نويسنده , , M. and Rossetto، نويسنده , , L.، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2009
Pages :
9
From page :
131
To page :
139
Abstract :
Condensation in minichannels is widely used in air-cooled condensers for the automotive and air-conditioning industry, in heat pipes and other applications for system thermal control. The knowledge of pressure drops in such small channels is important in order to optimize heat transfer surfaces. This paper presents a model for calculation of the frictional pressure gradient during condensation or adiabatic liquid–gas flow inside minichannels with different surface roughness. In order to account for the effects of surface roughness, new experimental frictional pressure gradient data associated to single-phase flow and adiabatic two-phase flow of R134a inside a single horizontal mini tube with rough wall has been used in the modelling. It is a Friedel (1979) [Friedel, L., 1979. Improved friction pressure drop correlations for horizontal and vertical two-phase pipe flow. In: Proceedings of the European Two-Phase Flow Group Meeting, Ispra, Paper E2] based model and it takes into account mass velocity, vapor quality, fluid properties, reduced pressure, tube diameter, entrainment ratio and surface roughness. With respect to the flow pattern prediction capability, it has been built for shear dominated flow regimes inside pipes, thus, annular, annular-mist and mist flow are here predicted. However, the suggested procedure is extended to the intermittent flow in minichannels and it is also applied with success to horizontal macro tubes.
Keywords :
Pressure drop , Single Phase , Two phase , entrainment , Roughness , Minichannel
Journal title :
International Journal of Heat and Fluid Flow
Serial Year :
2009
Journal title :
International Journal of Heat and Fluid Flow
Record number :
2381695
Link To Document :
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