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Dual-stage servo control and active vibration compensation in magnetic hard disk drives.

机译:磁性硬盘驱动器中的双级伺服控制和主动振动补偿。

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摘要

In order to sustain the continuing increase in storage density in magnetic hard disk drives (HDD), high bandwidth dual-stage actuator servo systems have been developed to improve the precision of read/write head positioning control. In this dissertation, robust and adaptive controller design methodologies and algorithms are developed for PZT-actuated suspension and MEMS microactuator based dual-stage servo systems. Active vibration control techniques using dual-stage multi-sensing servo systems to compensate for high-frequency structural vibrations are proposed.; A coupled MIMO plant model of a PZT-actuated suspension dual-stage actuator is identified using frequency response modal testing. A structured uncertainty model is established to represent both parametric uncertainty and unmodeled dynamics for robust control design and analysis. Dual-stage controllers are designed using a decoupled single-input single-output (SISO) frequency shaping design technique and multi-variable robust controller design technique mu-synthesis. Experimental results are presented and compared.; An active vibration damping control scheme of using one PZT element as a vibration sensor and the other one as an actuator is proposed to damp the resonance modes of the PZT-actuated suspension dual-stage actuator. Vibration damping controller design using Kalman filter based state feedback control is described. Experimental results are presented demonstrating the effectiveness of the proposed control scheme in suppressing airflow excited structural vibrations.; For the controller design of a MEMS microactuator based dual-stage servo system, a decoupled design structure with microactuator inner-loop damping and a design methodology by discrete-time pole placement are proposed. A self-tuning control scheme is developed to compensate for the variations in the microactuator's resonance mode. An adaptive feedforward control technique is also developed for active vibration compensation using MEMS microactuator dual-stage servo systems. Simulation results are presented to verify the proposed control schemes.
机译:为了维持硬盘驱动器(HDD)中存储密度的持续增长,已经开发了高带宽双级致动器伺服系统,以提高读/写头定位控制的精度。本文针对基于PZT驱动的悬架和基于MEMS微驱动器的双级伺服系统,开发了鲁棒的自适应控制器设计方法和算法。提出了采用双级多感测伺服系统的主动振动控制技术,以补偿高频结构振动。使用频率响应模态测试确定PZT驱动的悬架双级执行器的耦合MIMO工厂模型。建立结构化的不确定性模型以表示参数不确定性和未建模的动力学,以进行鲁棒的控制设计和分析。使用解耦的单输入单输出(SISO)频率整形设计技术和多变量鲁棒控制器设计技术mu-synthesis设计双级控制器。提出并比较了实验结果。提出了一种主动减振控制方案,该方案将一个PZT元件用作振动传感器,将另一个用作致动器,以衰减PZT致动的悬架双级致动器的共振模式。描述了使用基于卡尔曼滤波器的状态反馈控制的减振控制器设计。实验结果表明了所提出的控制方案在抑制气流激发的结构振动方面的有效性。针对基于MEMS微致动器的双级伺服系统的控制器设计,提出了一种具有微致动器内环阻尼的解耦设计结构和离散时间极点布置的设计方法。开发了一种自调谐控制方案,以补偿微致动器共振模式的变化。还开发了一种自适应前馈控制技术,用于使用MEMS微执行器双级伺服系统进行主动振动补偿。仿真结果表明了所提出的控制方案的有效性。

著录项

  • 作者

    Li, Yunfeng.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 142 p.
  • 总页数 142
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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