Free-Fall Motion of Cluster of Equal Spheres in Quiescent Fluid at Low Reynolds Numbers.
Teruo KUMAGAI, Tetsuya Katoh, Kenya Nishihira
Abstract
Open-access reader
Teruo KUMAGAI, Tetsuya Katoh, Kenya Nishihira
Abstract
Open-access reader
Experiments for a cluster of equal spheres falling freely in quiescent glycerol at low Reynolds numbers are carried out using a large test tank. The number of spheres tested is from 3 to 8. When the number of spheres is below 6, several equal spheres, set adjacent at the initial time, arrange themselves to take regular polygonal positions on the same horizontal plane. On the other hand, in the case of numbers above 6, equal spheres, set adjacent at the initial time, do not take regular polygonal positions on the same horizontal plane. The numerical results obtained using Stokes' flow field do not predict these experimental results. However the numerical results obtained using Oseen's flow field agree well with the experimental results.
A significance statement is not available in the OpenAlex record.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
Experiments for a cluster of equal spheres falling freely in quiescent glycerol at low Reynolds numbers are carried out using a large test tank. The number of spheres tested is from 3 to 8. When the number of spheres is below 6, several equal spheres, set adjacent at the initial time, arrange themselves to take regular polygonal positions on the same horizontal plane. On the other hand, in the case of numbers above 6, equal spheres, set adjacent at the initial time, do not take regular polygonal positions on the same horizontal plane. The numerical results obtained using Stokes' flow field do not predict these experimental results. However the numerical results obtained using Oseen's flow field agree well with the experimental results.
Key concepts: Reynolds number, SPHERES, Falling (accident), Plane (geometry), Mathematics, Flow (mathematics), Mechanics, Cluster (spacecraft)