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Servo-Pattern Design and Track-Following Control for Nanometer Head Positioning on Flexible Tape Media

机译:柔性磁带介质上纳米头定位的伺服模式设计和跟踪控制

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摘要

Achieving multi-Terabyte capacity in tape cartridges requires a substantially higher track density than that available in present systems, and hence a significantly higher positioning accuracy is required of the track-following servo in tape drives. In this paper, advanced concepts are considered for several elements of a tape system that enhance the track-following servo performance to reach nanometer positioning accuracy. We introduce a novel method for optimizing the geometry of servo patterns in a timing-based servo system. The design criterion aims to minimize the measurement error in the position-error signal (PES) yielded by a digital synchronous servo channel. A flangeless tape path is adopted to mitigate high-frequency components of the lateral tape motion. The track-following servo controller, which is designed based on the $H_{infty}$ approach, takes into account the measured plant transfer function, the disturbance characteristics of the tape path, and the properties of servo channel. These elements are combined to investigate the track-following performance achievable with a new high-SNR magnetic tape based on perpendicularly-oriented BaFe particles. With this setup, a record closed-loop track-following performance of less than 14 nm PES standard deviation is demonstrated.
机译:与现有系统相比,在盒式磁带中实现多TB容量需要的磁道密度要高得多,因此,磁带驱动器中的磁道跟随伺服器需要更高的定位精度。在本文中,对磁带系统的几个元素考虑了高级概念,这些元素可增强跟踪磁道的伺服性能以达到纳米定位精度。我们介绍了一种用于优化基于时序的伺服系统中伺服模式的几何形状的新颖方法。设计标准旨在最大​​程度地减少数字同步伺服通道产生的位置误差信号(PES)中的测量误差。采用无凸缘的磁带路径以减轻磁带横向运动的高频分量。跟踪伺服控制器是基于$ H_ {infty} $方法设计的,它考虑了测得的工厂传递函数,磁带路径的干扰特性以及伺服通道的特性。将这些元素组合起来,以研究基于垂直取向的BaFe粒子的新型高SNR磁带可获得的磁道跟踪性能。通过这种设置,展示了创纪录的小于14 nm PES标准偏差的跟踪跟踪性能。

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