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Mechanistic Features of Nanodiamonds in the Lapping of Magnetic Heads

机译:磁头研磨中纳米金刚石的机械特征

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摘要

Nanodiamonds, which are the main components of slurry in the precision lapping process of magnetic heads, play an important role in surface quality. This paper studies the mechanistic features of nanodiamond embedment into a Sn plate in the lapping process. This is the first study to develop mathematical models for nanodiamond embedment. Such models can predict the optimum parameters for particle embedment. From the modeling calculations, the embedded pressure satisfiesp0=3/2·W/πa2and the indentation depth satisfiesδ=k1P/HV. Calculation results reveal that the largest embedded pressure is 731.48 GPa and the critical indentation depthδis 7 nm. Atomic force microscopy (AFM), scanning electron microscopy (SEM), and Auger electron spectroscopy (AES) were used to carry out surface quality detection and analysis of the disk head. Both the formation of black spots on the surface and the removal rate have an important correlation with the size of nanodiamonds. The results demonstrate that an improved removal rate (21 nm·min−1) can be obtained with 100 nm diamonds embedded in the plate.
机译:纳米二胺是磁头精密研磨过程中浆料的主要成分,在表面质量上发挥着重要作用。本文研究了纳米胺嵌入式在研磨过程中的SN板中的机械特征。这是第一次开发纳米金刚石嵌入数学模型的研究。这种模型可以预测粒子嵌入的最佳参数。根据建模计算,嵌入式压力满足P0 = 3/2·w /π2和压痕深度满足δ= K1p / HV。计算结果表明,最大的嵌入压力为731.48GPa和临界压痕深度Δis7nm。原子力显微镜(AFM),扫描电子显微镜(SEM)和螺旋钻电子光谱(AES)用于进行磁盘头的表面质量检测和分析。表面上的黑点的形成和去除率都与纳米金刚石的大小有着重要的相关性。结果表明,通过嵌入板中的100nm金刚石可以获得改善的去除率(21nm·min-1)。

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