The blowdown (rapid release) of high pressure gas from a pressure vessel adiabatically cools the gas remaining in the vessel. The gas near the wall is warmed by conduction from the wall, producing radial temperature and density gradients that affect the flow, the mass efflux rate, and the thermodynamic states of both the outflowing and the contained gas. The resulting buoyancy-driven flow circulates the gas through the vessel and reduces, but does not eliminate, these gradients. The purpose of this technical brief is to estimate when blowdown cooling is rapid enough that the gas in the pressure vessel is neither isothermal nor isopycnic, though it remains isobaric. I define a dimensionless number, the buoyancy circulation number, that parametrizes these effects.1
Skip Nav Destination
e-mail: katz@wuphys.wustl.edu
Article navigation
June 2009
Technical Briefs
Circulation in Blowdown Flows
Jonathan I. Katz
e-mail: katz@wuphys.wustl.edu
Jonathan I. Katz
MITRE Corporation
, 7515 Colshire Drive, McLean, VA 22102; and Department of Physics and McDonnell Center for the Space Sciences, Washington University
, 1 Brookings Drive, St. Louis, MO 63130
Search for other works by this author on:
Jonathan I. Katz
MITRE Corporation
, 7515 Colshire Drive, McLean, VA 22102; and Department of Physics and McDonnell Center for the Space Sciences, Washington University
, 1 Brookings Drive, St. Louis, MO 63130e-mail: katz@wuphys.wustl.edu
J. Pressure Vessel Technol. Jun 2009, 131(3): 034501 (2 pages)
Published Online: April 7, 2009
Article history
Received:
April 30, 2008
Revised:
November 12, 2008
Published:
April 7, 2009
Citation
Katz, J. I. (April 7, 2009). "Circulation in Blowdown Flows." ASME. J. Pressure Vessel Technol. June 2009; 131(3): 034501. https://doi.org/10.1115/1.3110038
Download citation file:
20
Views
Get Email Alerts
Cited By
Stress Analysis of ASME Section X Flanges Using Classical Lamination Theory
J. Pressure Vessel Technol (June 2023)
Theoretical Analysis of Free Vibration and Transient Response of Rectangular Plate–Cavity System Under Impact Loading
J. Pressure Vessel Technol (June 2023)
Integral Hydro-Bulge Forming Method of Spherical Pressure Vessels Using a Triangle Patch Polyhedron
J. Pressure Vessel Technol (June 2023)
Random Fatigue Analysis of Cryogenic Liquid Tanker Under Road Spectrum Load and a Simplified Algorithm
J. Pressure Vessel Technol (June 2023)
Related Articles
Nonclassical Thermal Effects in Stokes’ Second Problem for Micropolar Fluids
J. Appl. Mech (July,2005)
Nonlinear Analysis of Axisymmetric Layered Pressure Vessels—Part 1:
Theory
J. Pressure Vessel Technol (May,1989)
A More Accurate Method for Predicting the Prestresses in a Multilayer Wrapped Cylindrical Vessel
J. Pressure Vessel Technol (August,1991)
Integrity Assessment of Pressure Components With Local Hot Spots
J. Pressure Vessel Technol (May,2005)
Related Proceedings Papers
Related Chapters
Basic Concepts
Design & Analysis of ASME Boiler and Pressure Vessel Components in the Creep Range
Section VIII–Division I: Rules for Construction of Pressure Vessels
Online Companion Guide to the ASME Boiler and Pressure Vessel Codes
Development of Nuclear Boiler and Pressure Vessels in Taiwan
Companion Guide to the ASME Boiler and Pressure Vessel Code, Volume 3, Third Edition