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Image processing of novel vision-assisted hard disk drive flex cable-actuator manufacturing

机译:新型视觉辅助硬盘驱动器柔性电缆执行器的图像处理

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摘要

While advancing storage capacity for magnetic disk drives into multi-terabyte domain, the corresponding form factor is being reduced due to significant application demand in various consumer electronics sectors and requirements for power reduction. These two inversely trends veer at a point that any misalignment due to mechanical tolerances or assembling inconsistency can result in excessive operating dynamics issues and drive-to-drive final performance variation. Among all mechanical factors, misalignment of flex cable assembly and the corresponding tolerance build up from adjacent parts during manufacturing and packaging into disk drives can result in deviation of real flex cable profile from engineered design case, which inevitably gives rise to issues of uncontrollable variation in mass production. Especially when (1) settling requirement is reaching to hundreds of nanometers and (2) more data sectors are packed in a circular trace than before because of advancement of perpendicular recording technology, low frequency and long settling flex cable dynamics become the most and difficult task to resolve when disk drive’s capacity is beyond a terabyte point. The work presented in this paper suggests a solution to reduce such variation and to ensure flex cable performance at mass production level. An alternative approach in assembling flexible circuitry assembly on to actuator comb and integrated lead suspensions is proposed. Apart from traditional alignment methods, robotic vision guided method and assembling system are adopted and developed. Its capability of reaching micro-scale position and alignment accuracy is demonstrated with lower drive-to-drive flex dynamic performance variation.
机译:在将磁盘驱动器的存储容量提高到数TB的领域的同时,由于各种消费电子领域的大量应用需求和降低功耗的要求,相应的外形尺寸也在减小。这两个相反的趋势表明,由于机械公差或组装不一致而导致的任何未对准都会导致过度的运行动力学问题和驱动器最终性能变化。在所有机械因素中,挠性电缆组件的未对准以及在制造和包装到磁盘驱动器过程中从相邻零件产生的相应公差会导致实际挠性电缆轮廓与工程设计案例的偏差,这不可避免地引起了不可控的变化问题。大量生产。尤其是当(1)沉降要求达到数百纳米,并且(2)由于垂直记录技术的进步,在圆形迹线中封装的数据扇区比以前多时,低频和长沉降的柔性电缆动态成为最困难的任务解决磁盘驱动器的容量超过TB的问题。本文提出的工作提出了一种解决方案,以减少这种变化并确保批量生产水平的挠性电缆性能。提出了一种将柔性电路组件组装到致动器梳子和集成式引线悬架上的替代方法。除了传统的对准方法外,还采用并开发了机器人视觉引导方法和装配系统。较低的驱动器到驱动器挠性动态性能变化证明了其达到微米级位置和对准精度的能力。

著录项

  • 来源
    《Microsystem Technologies》 |2009年第11期|1637-1643|共7页
  • 作者单位

    School of Engineering and Advanced Technology Massey University Auckland New Zealand;

    Hitachi Global Storage Technologies 5600 Cottle Rd San Jose CA 95193 USA;

    Hitachi Global Storage Technologies 5600 Cottle Rd San Jose CA 95193 USA;

    Hitachi Global Storage Technologies 5600 Cottle Rd San Jose CA 95193 USA;

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  • 正文语种 eng
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