Abstract
In this paper the Dean (1928) equations are extended to the case of a helical pipe flow, and it is shown that they depend not only on the Dean number K but also on a new parameter λ/[Rscr ] where λ is the ratio of the torsion τ to the curvature κ of the pipe axis and [Rscr ] the Reynolds number referred in the usual way to the pipe radius a and to the equivalent maximum speed in a straight pipe under the same axial pressure gradient. The fact that the torsion has no first-order effect on the flow is confirmed, but it is shown that this is peculiar to a circular cross-section. In the case of an elliptical cross-section there is a first-order effect of the torsion on the secondary flow, and in the limit λ/[Rscr ] → ∞ (twisted pipes, provided only with torsion), the first-order ‘displacement’ effect of the walls on the secondary flow, analysed in detail by Choi (1988), is recovered.Different systems of coordinates and different orders of approximations have recently been adopted in the study of the flow in a helical pipe. Thus comparisons between the equations and the results presented in different reports are in some cases difficult and uneasy. In this paper the extended Dean equations for a helical pipe flow recently derived by Kao (1987) are converted to a simpler form by introducing an appropriate modified stream function, and their equivalence with the present set of equations is recovered. Finally, the first-order equivalence of this set of equations with the equations obtained by Murata et al. (1981) is discussed.
Publisher
Cambridge University Press (CUP)
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics
Reference17 articles.
1. Mercier, C. :1963 Sur une representation des surfaces toroidales: applications aux equilibres magnetohydrodynamiques.Fusion Nucleaire,3,89.
2. Solove'v, L. S. & Shafranov, V. D. 1970 Plasma confinement in closed magnetic system. Rev. Plasma Phys. , vol. 5.New York:Consultants Bureau.
3. Germano, M. :1982 On the effect of torsion in a helical pipe flow.J. Fluid Mech. 125,1.
4. Van Dyke, M. 1978 Extended Stokes series: laminar flow through a loosely coiled pipe.J. Fluid Mech. 86,129.
5. Todd, L. :1986 Steady laminar flow through thin curved pipes.Fluid Dyn. Res. 1,237.
Cited by
151 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献