Experimental and Analytical Study of the Pressure Drop Across a Double-Outlet Vortex Chamber

Author:

Jawarneh Ali M.1,Sakaris P.2,Vatistas Georgios H.2

Affiliation:

1. Department of Mechanical Engineering, The Hashemite University, Zarqa 13115, Jordan

2. Department of Mechanical and Industrial Engineering, Concordia University, 1455 de-Maisonneuve Blvd. West, Montreal H3G 1M8, Canada

Abstract

Abstract This paper presents experimental and analytical results concerning the pressure drop and the core size in vortex chambers. The new formulation is based on the conservation of mass and energy integral equations and takes into account the presence of two outlet ports. The diminishing vortex strength is introduced through the vortex decay factor. The influence of vortex chamber geometry, such as diameter ratio, aspect ratio, and Reynolds number, on the flow field have been examined and compared with the present experimental data. It is shown that the presence of the swirl velocity component makes the pressure drop across a vortex chamber significantly different than the familiar unidirectional pipe flow. When the chamber length is increased, the vortex diminishes under the action of friction, producing a weaker centrifugal force which leads to a further pressure drop. It is revealed that by increasing the Reynolds number, the cores expand resulting into a larger pressure coefficient. For a double-outlet chamber where the flow is divided into two streams, the last parameter is found to be less than that of a single-outlet.

Publisher

ASME International

Subject

Mechanical Engineering

Reference14 articles.

1. Shakespeare, W. J., and Levy, E. K., 1980, “Pressure Drop in a Confined Vortex With High Flow Rate,” paper presented at the ASME Winter Annual Meeting, Chicago, IL, November.

2. Vyas, B, and Majdalani, J., 2003, “The Bidirectional Vortex. Part 2: Viscous Core Corrections,” 39th AIAA Conference and Exhibit, July 20–23.

3. Internal Flow Modelling of Vortex Throttles;Yang;Proc. Inst. Mech. Eng.

4. Obsevations and LDA Measurements of Confined Turbulent Vortex Flow;Escudier;J. Fluid Mech.

5. The Decay of a Turbulent Swirl in a Pipe;Kreith;J. Fluid Mech.

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