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Rotating reactor studiesUndesired gravitational effects such as convection or sedimentation in a fluid can sometimes be avoided or decreased by the use of a closed chamber uniformly rotated about a horizontal axis. In a previous study, the spiral orbits of a heavy or buoyant particle in a uniformly rotating fluid were determined. The particles move in circles, and spiral in or out under the combined effects of the centrifugal force and centrifugal buoyancy. A optimization problem for the rotation rate of a cylindrical reactor rotated about its axis and containing distributed particles was formulated and solved. Related studies in several areas are addressed. A computer program based on the analysis was upgraded by correcting some minor errors, adding a sophisticated screen-and-printer graphics capability and other output options, and by improving the automation. The design, performance, and analysis of a series of experiments with monodisperse polystyrene latex microspheres in water were supported to test the theory and its limitations. The theory was amply confirmed at high rotation rates. However, at low rotation rates (1 rpm or less) the assumption of uniform solid-body rotation of the fluid became invalid, and there were increasingly strong secondary motions driven by variations in the mean fluid density due to variations in the particle concentration. In these tests the increase in the mean fluid density due to the particles was of order 0.015 percent. To a first approximation, these flows are driven by the buoyancy in a thin crescent-shaped depleted layer on the descending side of the rotating reactor. This buoyancy distribution is balanced by viscosity near the walls, and by the Coriolis force in the interior. A full analysis is beyond the scope of this study. Secondary flows are likely to be stronger for buoyant particles, which spiral in towards the neutral point near the rotation axis under the influence of their centrifugal buoyancy. This is because the depleted layer is thicker and extends all the way around the reactor.
Document ID
19910006108
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Roberts, Glyn O.
(Roberts Associates, Inc. Vienna, VA, United States)
Date Acquired
September 6, 2013
Publication Date
January 10, 1991
Subject Category
Materials Processing
Report/Patent Number
RAI-89-RR-2
NAS 1.26:184095
NASA-CR-184095
Report Number: RAI-89-RR-2
Report Number: NAS 1.26:184095
Report Number: NASA-CR-184095
Accession Number
91N15421
Funding Number(s)
CONTRACT_GRANT: NASA ORDER H-80505-B
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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