2019•The Proceedings of the Conference on Information Intelligence and Precision Equipment IIPRequires access

Magnetic-Head Positioning Control with Quadruple-Stage Actuator for HDDs

Takenori Atsumi, Shota Yabui

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Abstract

In this paper, we propose a quadruple-stage actuator system for a magnetic-head positioning system in hard disk drives (HDDs). The quadruple-stage actuator system consists of a voice coil motor, a milli actuator with two piezoelectric (PZT) elements, a micro actuator with two PZT elements, and a thermal actuator. The milli actuator is the first generation of a secondary actuator for a dual- stage actuator in the HDDs and moves a sway mode of a suspension. The micro actuator is the second generation of the secondary actuator for the dual-stage actuator in the HDDs and moves a yaw mode of the suspension. The thermal actuator is a new actuator for future HDDs and moves position of read/write elements in a horizontal direction with thermal expansion. The simulation results of sensitivity functions show that the proposed quadruple-stage actuator system can improve a performance of disturbance compensation by about 6 dB from that of a triple-stage actuator system.

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What this paper is about

In this paper, we propose a quadruple-stage actuator system for a magnetic-head positioning system in hard disk drives (HDDs). The quadruple-stage actuator system consists of a voice coil motor, a milli actuator with two piezoelectric (PZT) elements, a micro actuator with two PZT elements, and a thermal actuator. The milli actuator is the first generation of a secondary actuator for a dual- stage actuator in the HDDs and moves a sway mode of a suspension. The micro actuator is the second generation of the secondary actuator for the dual-stage actuator in the HDDs and moves a yaw mode of the suspension. The thermal actuator is a new actuator for future HDDs and moves position of read/write elements in a horizontal direction with thermal expansion. The simulation results of sensitivity functions show that the proposed quadruple-stage actuator system can improve a performance of disturbance compensation by about 6 dB from that of a triple-stage actuator system.

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Available abstract

In this paper, we propose a quadruple-stage actuator system for a magnetic-head positioning system in hard disk drives (HDDs). The quadruple-stage actuator system consists of a voice coil motor, a milli actuator with two piezoelectric (PZT) elements, a micro actuator with two PZT elements, and a thermal actuator. The milli actuator is the first generation of a secondary actuator for a dual- stage actuator in the HDDs and moves a sway mode of a suspension. The micro actuator is the second generation of the secondary actuator for the dual-stage actuator in the HDDs and moves a yaw mode of the suspension. The thermal actuator is a new actuator for future HDDs and moves position of read/write elements in a horizontal direction with thermal expansion. The simulation results of sensitivity functions show that the proposed quadruple-stage actuator system can improve a performance of disturbance compensation by about 6 dB from that of a triple-stage actuator system.

Key concepts: Actuator, Voice coil, Rotary actuator, Compensation (psychology), Control theory (sociology), Head (geology), Engineering, Electromagnetic coil

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