DocumentCode :
3288023
Title :
High-bandwidth servo control designs for magnetic disk drives
Author :
Kobayashi, Masahito ; Nakagawa, Shinsuke ; Atsumi, Takenori ; Yamaguchi, Takashi
Author_Institution :
Mech. Eng. Res. Lab., Hitachi Ltd., Ibaraki, Japan
Volume :
2
fYear :
2001
fDate :
2001
Firstpage :
1124
Abstract :
In order to attain high track density, a head must accurately follow position information recorded on a disk. To achieve high accuracy head positioning, disk drives require increased servo bandwidth. However, servo bandwidth is restricted by the main resonance frequency of an actuator and by the sampling frequency. In this paper, we discuss several servo technologies. First, we present the limit of the servo bandwidth of digital loop-shaping servo methods to the mechanical resonance at which the main resonance frequency of a voice coil motor (VCM) actuator is 5 kHz, and the sampling time is 30 μs. We show that the 1.5 kHz servo bandwidth can be attained by using a phase stabilized compensation method. It is also shown that by using the main resonance pole zero compensation method drawn from H-infinity theory, the servo bandwidth increases 1.1 times. Next, we discuss a vibration-sensing feedback method which uses a sensor to measure and carry out analog feedback of the main resonance characteristic of the VCM actuator. The resonance mode can be suppressed by the vibration-sensing feedback servo, and it is shown that the servo bandwidth increases 1.2 times. Finally, we present the phase stabilized compensation design for a dual-stage actuator. The 2-kHz servo bandwidth is achieved when the main resonance frequency of the fine PZT actuator is set to 7 kHz. The impulse response characteristic of each control system, from the torque disturbance to the head, is also discussed
Keywords :
H control; compensation; disc drives; electric actuators; feedback; magnetic disc storage; poles and zeros; servomechanisms; stability; vibration measurement; 1.5 kHz; 2 kHz; 30 mus; 5 kHz; 7 kHz; H-infinity theory; H theory; VCM actuator; actuator resonance frequency; analog feedback; digital loop-shaping servo methods; dual-stage actuator; fine PZT actuator; high-accuracy head positioning; high-bandwidth servo control designs; impulse response; magnetic disk drives; phase stabilized compensation design; phase stabilized compensation method; position information; resonance pole zero compensation method; sampling frequency; servo bandwidth; torque disturbance; track density; vibration-sensing feedback servo; voice coil motor actuator; Actuators; Bandwidth; Disk drives; Feedback; Magnetic heads; Magnetic resonance; Resonant frequency; Sampling methods; Servomechanisms; Servosystems;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advanced Intelligent Mechatronics, 2001. Proceedings. 2001 IEEE/ASME International Conference on
Conference_Location :
Como
Print_ISBN :
0-7803-6736-7
Type :
conf
DOI :
10.1109/AIM.2001.936858
Filename :
936858
Link To Document :
بازگشت