全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...
-  2018 

头/盘接触状态下润滑剂迁移行为研究
Investigation of Lubricant Transfer under Slider Lubricant Contact Condition

DOI: 10.3969/j.issn.0258-2724.2018.04.022

Keywords: 润滑剂转移,分子动力学模拟,盘片速度,硬盘,
lubricant transfer
,molecular dynamics simulation,disk velocity,hard disk drive

Full-Text   Cite this paper   Add to My Lib

Abstract:

为了提高磁头飞行稳定性,增加硬盘使用寿命,基于分子动力学方法建立了磁头磁盘接触状态下的润滑剂迁移模型.根据硬盘工作时磁头磁盘的相对移动速度及磁头在盘片表面飞行时高、低压区域压力差的范围,采用所建立模型分析了相对移动速度及高、低压区域压力差对润滑剂迁移及在盘片表面分布的影响;此外,通过调节模型中单个润滑剂分子的粒子数得到不同长度的润滑剂分子碎片,并分析润滑剂分子碎片对润滑剂迁移的影响。研究结果表明:磁头磁盘之间的润滑剂转移随着相对移动速度及高、低压区域之间压力差的增大而增大.润滑剂转移量在单位压力及单位速度下的增长率分别约为38.8%和6.7%;润滑剂分子碎片对磁头磁盘之间的润滑剂转移影响很小;润滑剂在盘片表面堆积的高度随着磁头磁盘相对移动速度的增加而降低;高、低压区压力差的变化对润滑剂在盘片表面堆积的高度没有影响.
:To enhance slider flying stability and extend the life span of hard-disk drives, a molecular dynamics model for investigating lubricant transfer in the presence of slider lubricant contact was built. The effects of the following parameters on lubricant transfer and lubricant distribution on the disk surface during the operation of the hard-disk drive were analysedrelative velocity between the slider and disk and the range of the air-bearing pressure difference between the high-and low-pressure areas before contact. In addition, lubricant fragments with different lengths were obtained by adjusting the number of beads within a full lubricant molecule. The effect of lubricant fragments on lubricant transfer was also investigated. The simulation results indicate that the amount of lubricant transfer increases with increasing slider-to-disk relative velocity and air-bearing pressure difference; the growth rates of the amount of lubricant transfer are 38.8% and 6.7% for unit air-bearing pressure and unit velocity, respectively. Lubricant fragments have little effect on lubricant transfer; the height of lubricant accumulation decreases with increasing relative velocity. The lubricant accumulation height on the disk surface is not affected by the air-bearing pressure difference

References

[1]  MENDEZ A R, BOGY D B. Lubricant flow and accumulation on the slider's air-bearing surface in a hard disk drive[J]. Tribolgy Letters, 2014, 53(2):469-476.
[2]  PAN D, OVCHARENKO A, PENG J P, et al. Effect of lubricant fragments on lubricant transfer[J]. IEEE Transactions on Magnetics, 2014, 50(9):1-5.
[3]  张立邦. 超低飞高硬盘头盘系统稳定性研究[D]. 武汉:华中科技大学,2009.
[4]  AMBEKAR R P, BOGY D B, BHATIA C S. Lubricant depletion and disk-to-head lubricant transfer at the head-disk interface in hard disk drives[J]. Journal of Tribology, 2009,131(3):1519-1526.
[5]  MA Y, LIU B. Dominant factors in lubricant transfer and accumulation in slider-disk interface[J]. Tribolgy Letters, 2008, 29(2):119-127.
[6]  潘登. 基于分子动力学的磁头磁盘界面润滑剂转移行为及实验研究[D]. 哈尔滨:哈尔滨工业大学,2014.
[7]  NOVOTNY V J, KARIS T E, JOHNSON N W. Lubricant removal, degradation, and recovery on particulate magnetic recording media[J]. Journal of Tribology, 1992, 114(1):61-67.
[8]  LEI R Z, GELLMAN A J. Humidity effects on PFPE lubricant bonding to a-CHx overcoats[J]. Langmuir, 2000, 16:6628-6635.
[9]  CHEN C Y, FONG W, BOGY D B, et al. Lubricant thickness effect on tribological performance of ZDOL lubricated disks with hydrogenated overcoats[J]. Tribolgy Letters, 1999, 7(1):1-10.
[10]  PAN D, OVCHARENKO A, TANGARAJ R, et al. Investigation of lubricant transfer between slider and disk using molecular dynamics simulation[J]. Tribolgy Letters, 2014, 53(1):373-381.
[11]  张凯. 磁头/磁盘界面摩擦学特性影响因素分析及实验研究[D]. 哈尔滨:哈尔滨工业大学,2015.
[12]  SANG H K, DAI Q, MARCHON B, et al. Humidity effects on lubricant transfer in the head-disk interface of a hard disk drive[J]. Journal of Applied Physics, 2009, 105(7):36.
[13]  董明. 磁头/磁盘界面薄膜润滑剂流动及损耗特性研究[D]. 哈尔滨:哈尔滨工业大学,2014.
[14]  YU S K, LIU B, ZHOU W D, et al. Dynamic stability analysis for surfing head-disk interface[J]. IEEE Transactions on Magnetics, 2009, 45(11):4979-4983.
[15]  CANCHI S V, BOGY D B. Experiments on slider lubricant interactions and lubricant transfer using TFC sliders[J]. Microsystem Technologies, 2012, 18(9/10):1517-1523.
[16]  AMBEKAR R P, BOGY D B. Critical clearance and lubricant instability at the head-disk interface of a disk drive[J]. Applied Physics Letters, 2008, 92(3):197.
[17]  LI N, MENG Y, BOGY D B. Effects of PFPE lubricant properties on the critical clearance and rate of the lubricant transfer from disk surface to slider[J]. Tribolgy Letters, 2011, 43(3):275-286.
[18]  ZHANG Y, POLYCARPOU A A. Lubricant transfer model at the head-disk interface in magnetic storage considering lubricant-lubricant interaction[J]. Tribolgy Letters, 2016, 62(3):38.
[19]  KUBOTERA H, IMAMURA T. Monte carlo simulations of air shielding effect on lubricant transfer at the head disk interface[J]. Applied Physics Letters, 2009, 94(24):740.

Full-Text

comments powered by Disqus

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133