Numerical and Experimental Investigation of Circulation in Short Cylinders(Electromagnetism, Optics, Acoustics, Heat Transfer, Classical Mechanics and Fluid Mechanics)
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概要
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In preparation for an experimental study of magnetorotational instability (MRI) in liquid metal, we explore Couette flows having height comparable to the gap between cylinders, centrifugally stable rotation, and high Reynolds number. Experiments in water are compared with numerical simulations. Simulations show that endcaps corotating with the outer cylinder drive a strong poloidal circulation that redistributes angular momentum. Predicted azimuthal flow profiles agree well with experimental measurements. Spin-down times scale with Reynolds number as expected for laminar Ekman circulation; extrapolation from two-dimensional simulations at Re ≤ 3200 agrees remarkably well with experiment at Re 〜 10^6. This suggests that turbulence does not dominate the effective viscosity. Further detailed numerical studies reveal a strong radially inward flow near both endcaps. After turning vertically along the inner cylinder, these flows converge at the midplane and depart the boundary in a radial jet. To minimize this circulation in the MRI experiment, endcaps consisting of multiple, differentially rotating rings are proposed. Simulations predict that an adequate approximation to the ideal Couette profile can be obtained with a few rings.
- 社団法人日本物理学会の論文
- 2004-09-15
著者
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Ji Hantao
Princeton Plasma Physics Laboratory
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Goodman Jeremy
Princeton Univ.
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Goodman Jeremy
Princeton University Observatory
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Kageyama Akira
Earth Simulator Center Japan Agency For Marine-earth Science And Technology
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CHENI Fei
Princeton Plasma Physics Laboratory
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SHOSHAN Ethan
Rutgers University
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Ji H
Princeton Plasma Physics Laboratory
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