A simple model is developed here to predict the pressure drop and discharge coefficient for incompressible flow through orifices with length-to-diameter ratio greater than zero (orifice tubes) over wide ranges of Reynolds number. The pressure drop for flow through orifice tubes is represented as two pressure drops in series; namely, a pressure drop for flow through a sharp-edged orifice in series with a pressure drop for developing flow in a straight length of tube. Both of these pressure drop terms are represented in the model using generally accepted correlations and experimental data for developing flows and sharp-edged orifice flow. We show agreement between this simple model and our numerical analysis of laminar orifice flow with length-to-diameter ratio up to 15 and for Reynolds number up to 150. Agreement is also shown between the series pressure drop representation and experimental data over wider ranges of Reynolds number. Not only is the present work useful as a design correlation for equipment relying on flow through orifice tubes but it helps to explain some of the difficulties that previous authors have encountered when comparing experimental observation and available theories.
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Research Papers
A Series Pressure Drop Representation for Flow Through Orifice Tubes
T. A. Jankowski,
T. A. Jankowski
Mechanical and Thermal Engineering Group (AET-1),
e-mail: jankowski@lanl.gov
Los Alamos National Laboratory
, MS J580, Los Alamos, NM 87545
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E. N. Schmierer,
E. N. Schmierer
Mechanical and Thermal Engineering Group (AET-1),
Los Alamos National Laboratory
, MS J580, Los Alamos, NM 87545
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F. C. Prenger,
F. C. Prenger
Mechanical and Thermal Engineering Group (AET-1),
Los Alamos National Laboratory
, MS J580, Los Alamos, NM 87545
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S. P. Ashworth
S. P. Ashworth
Superconductivity Technology Center (MPA-STC),
Los Alamos National Laboratory
, MS T004, Los Alamos, NM 87545
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T. A. Jankowski
Mechanical and Thermal Engineering Group (AET-1),
Los Alamos National Laboratory
, MS J580, Los Alamos, NM 87545e-mail: jankowski@lanl.gov
E. N. Schmierer
Mechanical and Thermal Engineering Group (AET-1),
Los Alamos National Laboratory
, MS J580, Los Alamos, NM 87545
F. C. Prenger
Mechanical and Thermal Engineering Group (AET-1),
Los Alamos National Laboratory
, MS J580, Los Alamos, NM 87545
S. P. Ashworth
Superconductivity Technology Center (MPA-STC),
Los Alamos National Laboratory
, MS T004, Los Alamos, NM 87545J. Fluids Eng. May 2008, 130(5): 051204 (7 pages)
Published Online: May 5, 2008
Article history
Received:
July 23, 2007
Revised:
February 27, 2008
Published:
May 5, 2008
Citation
Jankowski, T. A., Schmierer, E. N., Prenger, F. C., and Ashworth, S. P. (May 5, 2008). "A Series Pressure Drop Representation for Flow Through Orifice Tubes." ASME. J. Fluids Eng. May 2008; 130(5): 051204. https://doi.org/10.1115/1.2907408
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