首页> 外文期刊>Journal of Tribology >Air Bearing Interface Characteristics of Opposed Asymmetric Recording Head Sliders Flying on a 1 in. Titanium Foil Disk
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Air Bearing Interface Characteristics of Opposed Asymmetric Recording Head Sliders Flying on a 1 in. Titanium Foil Disk

机译:相对的非对称记录头滑块在1英寸钛箔盘上飞行的空气轴承界面特性

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The current effort was motivated by the increasing appearance of data storage devices in small portable and mobile product formats and the need for these devices to deliver high storage capacity, low power requirements, and increased ruggedness. In order to address these requirements, this work considered the storage device to utilize a 1 in. titanium foil disk and a pair of opposed femtosized zero-load recording head sliders with asymmetrically configured air bearing surfaces. A titanium foil disk, due to its reduced thickness and relatively low mass density, requires less operational energy than a hard disk while providing storage densities and data transfer rates typical of a hard disk. The zero-load sliders were chosen in order to make negligible the air bearing interface normal force acting on the disk surface that can lead to high speed disk instability. The asymmetry of the slider air bearing surfaces, together with the disk dynamic flexibility, greatly improves the ability of the slider-disk interface to absorb substantial mechanical shock and other dynamic effects without the associated contact and impact typically observed with a hard disk. The current project evaluated the characteristics of this slider-disk air bearing interface for both static and unsteady operating conditions. Time dependent studies included a numerical simulation of the dynamic load process and the response to mechanical shock. A comparison with the performance of a hard disk interface was also included.
机译:当前的努力是由于小型便携式和移动产品格式中数据存储设备的出现越来越多,以及对这些设备提供高存储容量,低功耗要求和增强的耐用性的需求。为了满足这些要求,这项工作考虑了存储设备使用1英寸的钛箔盘和一对相对的,毫微微的飞零尺寸记录头滑块,该滑块具有不对称配置的空气轴承表面。钛箔盘由于其减小的厚度和相对较低的质量密度,与硬盘相比需要较少的操作能量,同时提供了硬盘典型的存储密度和数据传输速率。选择零负荷滑块是为了使作用在磁盘表面上的空气轴承界面法向力可忽略不计,这会导致高速磁盘不稳定。滑块空气轴承表面的不对称性以及磁盘的动态柔韧性大大提高了滑块-磁盘界面吸收大量机械冲击和其他动态影响的能力,而没有通常在硬盘上观察到的相关接触和冲击。当前项目评估了该滑块-磁盘空气轴承接口在静态和不稳定运行条件下的特性。与时间有关的研究包括动态载荷过程和对机械冲击的响应的数值模拟。还包括与硬盘接口性能的比较。

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