High Velocity Oblique Impact and Coefficient of Restitution for Head Disk Interface Operational Shock

Author:

Katta Raja R.1,Polycarpou Andreas A.1,Hanchi Jorge V.2,Crone Robert M.2

Affiliation:

1. Department of Mechanical Science and Engineering, University of Illinois at Urbana-Champaign, Urbana, IL 61801

2. Seagate Technology LLC, Minneapolis, MN 55416

Abstract

With the increased use of hard disk drives (HDDs) in mobile and consumer applications combined with the requirement of higher areal density, there is enhanced focus on reducing head disk spacing, and consequently there is higher susceptibility of slider/disk impact damage during HDD operation. To investigate this impact process, a dynamic elastic-plastic finite element model of a sphere (representing a slider corner) obliquely impacting a thin-film disk was created to study the effect of the slider corner radius and the impact velocity on critical contact parameters. To characterize the energy losses due to the operational shock impact damage, the coefficient of restitution for oblique elastic-plastic impact was studied using the finite element model. A modification to an existing physics-based elastic-plastic oblique impact coefficient of restitution model was proposed to accurately predict the energy losses for a rigid sphere impacting a half-space. The analytical model results compared favorably to the finite element results for the range from low impact angles (primarily normal impacts) to high impact angles (primarily tangential impacts).

Publisher

ASME International

Subject

Surfaces, Coatings and Films,Surfaces and Interfaces,Mechanical Engineering,Mechanics of Materials

Reference24 articles.

1. Analytical and Experimental Elastic-Plastic Impact Analysis of Magnetic Storage Head-Disk Interfaces;Katta;ASME J. Tribol.

2. Magnetic Erasures Due to Impact Induced Interfacial Heating and Magnetostriction;Suk;ASME J. Tribol.

3. Visualization and Characterization of Slider-Disk Interactions in Dynamic Load/Unload Processes;Liu;IEEE Trans. Magn.

4. Effect of Slider Burnish on Disk Damage During Dynamic Load/Unload;Suk;ASME J. Tribol.

5. Polycarpou, A. A., Hipwell, M. C., and Boutaghou, Z. E., 1999, “Edge Structure for Slider-Disc Interface and Method of Manufacture Therefore,” U.S. Patent No. 6,542,334.

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