On the structure and formation of spiral Taylor-Gortler vortices in spherical Couette flow

Citation
W. Sha et K. Nakabayashi, On the structure and formation of spiral Taylor-Gortler vortices in spherical Couette flow, J FLUID MEC, 431, 2001, pp. 323-345
Citations number
24
Categorie Soggetti
Physics,"Mechanical Engineering
Journal title
JOURNAL OF FLUID MECHANICS
ISSN journal
00221120 → ACNP
Volume
431
Year of publication
2001
Pages
323 - 345
Database
ISI
SICI code
0022-1120(20010325)431:<323:OTSAFO>2.0.ZU;2-O
Abstract
A direct numerical simulation of the spherical Couette flow between two sph eres with the inner sphere rotating was performed to investigate the detail ed structure, formation process and mechanism of the spiral Taylor-Gotler ( TG) vortices. For comparison with our previous experiments, a moderate gap case with clearance ratio beta = 0.14 is chosen in the present numerical st udy. With adequate initial and boundary conditions, we have sucessfully sim ulated the supercritical spiral TG vortex flow in this system. Analysis of the numerical results reveals the structure and features of the spiral TG v ortices. The flow consists of one toroidal TC vortex, one toroidal vortex c ell, three spiral TG vortices and a secondary flow circulation in each hemi sphere, and this supercritical flow solution features rotational and equato rial asymmetries. It is found that the spiral TG vortices are composed of a pair of counter-rotating, unequal spiral vortices with essentially differe nt structural forms. One begins in the secondary flow circulation at higher latitude and ends with a connection to the toroidal vortex cell at lower l atitude while the other one starts on the inner rotating spherical surface at lower latitude and ends on the outer stationary spherical surface at hig her latitude. Through sucessive visualizations which display the transient features of the spiral TG vortices, we observe that vortex tearing, splitti ng, tilting, reconnecting, stretching and compressing occur in the formatio n of the spiral TG vortices. Pairing of two alternating helical vortices is the key process in their evolution. To understand the formation mechanism. we consider the vorticity production in the azimuthal vorticity component equation. The important vorticity tilting and stretching terms play differe nt roles in the formation process of these two counter-rotating spiral vort ices. The vorticity tilting term is responsible for generating both of the spiral vortices. The vorticity stretching term acts to stretch one of the s piral vortices from the inner sphere to the outer sphere while suppressing the stretching of the other in the azimuthal direction. The different forma tion mechanisms for these two counter-rotating spiral vortices lead to the structure of the spiral TG vortices.