Longitudinal Flow Field

作者: Dennis A. Siginer

DOI: 10.1007/978-3-319-02426-4_2

关键词: Constant (mathematics)TurbulenceFlow (mathematics)ViscoelasticityFlow fieldLaminar flowMechanicsCross section (physics)GeologyDrag

摘要: The state of the science in predicting hydrodynamically developed longitudinal field non-linear viscoelastic fluids straight tubes arbitrary but longitudinally constant cross section and friction factors is summarized. Laminar turbulent flow fields related phenomena including recent progress concerning all-important drag reduction are addressed.

参考文章(80)
A.B. Metzner, Heat Transfer in Non-Newtonian Fluids Advances in heat transfer. ,vol. 2, pp. 357- 397 ,(1965) , 10.1016/S0065-2717(08)70264-8
Y.I. Cho, James P. Harnett, Non-Newtonian Fluids in Circular Pipe Flow Advances in heat transfer. ,vol. 15, pp. 59- 141 ,(1982) , 10.1016/S0065-2717(08)70173-4
Robert S. Brodkey, E. R. Corino, A visual investigation of the wall region in turbulent flow Journal of Fluid Mechanics. ,vol. 37, pp. 1- 30 ,(1969) , 10.1017/S0022112069000395
LARRY D. ECKELMAN, GILEAD FORTUNA, T. J. HANRATTY, Drag Reduction and the Wavelength of Flow-oriented Wall Eddies Nature. ,vol. 236, pp. 94- 96 ,(1972) , 10.1038/PHYSCI236094A0
A.J Ghajar, M.Y Azar, Empirical correlations for friction factor in drag-reducing turbulent pipe flows International Communications in Heat and Mass Transfer. ,vol. 15, pp. 705- 718 ,(1988) , 10.1016/0735-1933(88)90014-0
G. Aguilar, K. Gasljevic, E. F. Matthys, Coupling between heat and momentum transfer mechanisms for drag-reducing polymer and surfactant solutions Journal of Heat Transfer-transactions of The Asme. ,vol. 121, pp. 796- 802 ,(1999) , 10.1115/1.2826068
E.D. Burger, W.R. Munk, H.A. Wahl, Flow Increase in the Trans Alaska Pipeline Through Use of a Polymeric Drag-Reducing Additive Journal of Petroleum Technology. ,vol. 34, pp. 377- 386 ,(1982) , 10.2118/9419-PA