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首页> 外文期刊>Journal of Tribology >Optimization of air bearing contours for shock performance of a hard disk drive
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Optimization of air bearing contours for shock performance of a hard disk drive

机译:优化空气轴承轮廓以提高硬盘驱动器的冲击性能

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摘要

Hard disk drives must be designed to withstand shock during operation. Large movements of the slider during a shock impulse can cause reading and writing errors, track misregistration, or in extreme cases, damage to the magnetic material and loss of data. The design of the air bearing contour determines the steady-state flying conditions of the slider as well as dynamic flying conditions, including shock response. In this paper a finite element model of the hard disk drive mechanical components was developed to determine the time dependent forces and moments applied to the slider during a shock event. The time-dependent forces and moments are applied as external loads in a solution of the dynamic Reynolds equation to determine the slider response to a shock event. The genetic algorithm was then used to optimize the air bearing contour for optimum shock response while keeping the steady flying conditions constant. The results show substantial differences in the spacing modulation of the head-disk interface after a shock as a function of the design of the air bearing contour
机译:硬盘驱动器的设计必须能够在操作过程中承受冲击。冲击脉冲期间滑块的较大移动可能会导致读写错误,磁道重合失调,或者在极端情况下会损坏磁性材料和丢失数据。空气轴承轮廓的设计决定了滑块的稳态飞行条件以及动态飞行条件,包括冲击响应。在本文中,开发了硬盘驱动器机械部件的有限元模型,以确定在冲击事件期间施加到滑块的时间相关力和力矩。时间相关的力和力矩在动态雷诺方程的解中作为外部载荷施加,以确定滑块对冲击事件的响应。然后,使用遗传算法优化空气轴承轮廓,以获得最佳的冲击响应,同时保持稳定的飞行条件恒定。结果表明,冲击后磁头-磁盘界面的间距调制随空气轴承轮廓的设计而变化。

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