DocumentCode :
1864830
Title :
Evaluation of an air shroud for rotating disk vibration suppression
Author :
Mou, J.Q. ; Lee, L.C. ; Guo, G.X.
Author_Institution :
Data Storage Inst., Singapore
fYear :
2005
fDate :
Nov. 29 2005-Dec. 2 2005
Firstpage :
1153
Abstract :
The growth trend of the recording density of hard disk drives (HDD) makes a demand for higher head positioning accuracy at faster disk rotation speed. However, the higher rotational speed of disk generates the greater flow induced vibration known as disk flutter, which causes the increase of the track misregistration (TMR). In this paper, air shroud is evaluated with numerical simulation and analytical results for disk vibration suppression. Firstly, the finite element model (FEM) for computational fluid dynamics (CFD) analysis based on the 3D Navier Stokes equations is built up for air shroud. The turbulence air flow velocity and the pressure distribution are simulated and evaluated for the air shroud with different opening. The parameters describing the air bearing function of the shroud, such as the stiffness and damping, are calculated based on the simulation results. It is found that with the decreasing of the shroud opening angle, the air flow has a more uniform flow pattern with higher bearing stiffness and better damping. The CFD simulation results also indicate that the bearing stiffness and damping of the air shroud can be further increased with smaller shroud-disk spacing of the air shroud. To evaluate the effectiveness of the air shroud on the disk vibration suppression, an analytical model based on disk rotary dynamics including the functional air bearing stiffness and bearing damping of the air shroud is developed. The analytical results demonstrate 15.8% suppression in disk vibration amplitude for the flutter vibration mode at resonance frequency 550 Hz, mainly by the damping effect of the air shroud
Keywords :
Navier-Stokes equations; computational fluid dynamics; disc drives; finite element analysis; hard discs; turbulence; vibration control; 3D Navier Stokes equations; 550 Hz; CFD; FEM; HDD; air bearing function; air shroud; computational fluid dynamics; disk rotation speed; disk vibration suppression; finite element model; flutter vibration mode; hard disk drives; induced vibration; numerical simulation; pressure distribution; resonance frequency; rotating disk vibration suppression; shroud-disk spacing; track misregistration; turbulence air flow velocity; Analytical models; Computational fluid dynamics; Computational modeling; Damping; Disk recording; Finite element methods; Hard disks; Magnetic heads; Numerical simulation; Resonance; Air Flow; FEM; HDD; Vibration;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power Engineering Conference, 2005. IPEC 2005. The 7th International
Conference_Location :
Singapore
Print_ISBN :
981-05-5702-7
Type :
conf
DOI :
10.1109/IPEC.2005.207081
Filename :
1627370
Link To Document :
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