000 02106nab a2200241 4500
005 20260520004415.0
008 260224s2012 xxu ing
041 _aInglés
245 0 0 _aDrift-Velocity Closure Relationships for Slug Two-Phase High-Viscosity Oil Flow in Pipes
260 _a
_b
_cjun. 2012
270 _a25/01/2013 ; 25/01/2013
300 _a8 p. ; 593-601
520 _aTranscripción del resumen del autor: The drift velocity of a gas bubble penetrating into a stagnant liquid is investigated experimentally in this paper. It is part of the translational slug velocity. The existing equations for the drift velocity are either developed by using the results of Benjamin (1968) analysis assuming inviscid fluid flow or correlated using air/water data. Effects of surface tension and viscosity usually are neglected. However, the drift velocity is expected to be affected by high oil viscosity. In this study, the work of Gokcal et al. (2009) has been extended for different pipe diameters and viscosity range. The effects of high oil viscosity and pipe diameter on drift velocity for horizontal and upward-inclined pipes are investigated. The experiments are performed on a flow loop with a test section with 50.8-, 76.2-, and 152.4-mm inside diameter (ID) for inclination angles of 0 to 90°. Water and viscous oil are used as test fluids. New correlation for drift velocity in horizontal pipes of different diameters and liquid viscosities is developed on the basis of experimental data. A new drift-velocity model/approach are proposed for high oil viscosity, valid for inclined pipes inclined from horizontal to vertical. The proposed comprehensive closure relationships are expected to improve the performance of two-phase-flow models for high-viscosity oils in the slug flow regime.
581 _a2
773 0 _tSPE Journal
_g17
942 _cARTICULO
100 1 _aJeyachandra, B.C.
_952935
100 1 _aGokcal, B.
_952936
100 1 _aAl-Sarkhi, A.
_952937
100 1 _aSarica, C.
_952938
100 1 _aSharma, A.K.
_952939
999 _c187547
_d187547