Skip to main content
Log in

Near surface microstructures developing under large sliding loads

  • Published:
Journal of Materials Engineering and Performance Aims and scope Submit manuscript

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

References

  1. D. A. Rigney and J.P. Hirth, Plastic Deformation and Sliding Friction of Metals,Wear, Vol 53, 1979, p 345–370

    Article  CAS  Google Scholar 

  2. D. Kuhlmann-Wilsdorf and L.K. Ives, Subsurface Hardening in Erosion-Damaged Copper as Inferred from the Dislocation Cell Structure and Its Dependence on Particle Velocity and Angle of Impact,Wear, Vol 85,1983, p 361–373

    Article  Google Scholar 

  3. P. Heilman, W.A.T. Clark, and D.A. Rigney, Orientation Determination of Subsurface Cells Generated by Sliding,Ada Metall., Vol 31, 1983, p 1293–1305

    Article  Google Scholar 

  4. D.A. Rigney, M.G.S. Naylor, R. Divakar, and L.K. Ives, Low Energy Structures Caused by Sliding and by Particle Impact,Mater. Sci. Eng., Vol 81, 1986, p 409–425

    Article  Google Scholar 

  5. S.L. Rice, H. Nowotny, and S.E Wayne, A Survey of the Development of Subsurface Zones in the Wear of Materials,Key Eng. Maters., Vol 33, 1989, p 77–100

    Google Scholar 

  6. J.J. Wert, The Role of Microstructure Subsurface Damage In- duced by Sliding Contact,Key Eng. Maters., Vol 33,1989, p 101- 134

    Google Scholar 

  7. Y. Zhu and D. Kuhlmann-Wilsdorf, Determining Subsurface Stress Distributions in Tribological Samples from Dislocation Cell Sizes in Low Energy Dislocation Structures,Mater. Sci. and Eng.,Vol A113, 1989, p 297–303

    Article  CAS  Google Scholar 

  8. S.K. Ganapathi, M. Aindow, H.L. Fraser, and D.A. Rigney, A Comparative Study of the Nanocrystalline Material Produced by Sliding Wear and Inert Gas Condensation,Mater. Res. Soc. Symp. Proc, Vol 206,1991, p 593–598

    CAS  Google Scholar 

  9. W.M. Rainforth, R. Stevens, and J. Nutting, Deformation Structures Induced by Sliding Contact,Phil. Mag. A, Vol 66, 1992, p 621–641

    Google Scholar 

  10. A.J. Perez-Unzueta and J.H. Beynon, Microstructure and Wear Resistance of Pearlitic Rail Steels,Wear, Vol 162–164, 1993, p 173–182

    Article  Google Scholar 

  11. F.P. Bowden, A.J.W. Moore, and D. Tabor, The Ploughing and Adhesion of Sliding Metals,J. Appl. Physics, Vol 14,1943, p 80- 91

    Article  Google Scholar 

  12. F.P. Bowden and D. Tabor,The Friction and Lubrication of Sol- ids, Oxford Press, 1950

  13. A.P. Green, Friction between Unlubricated Metals: ATheoretical Analysis of the Junction Model,Proc. Roy. Soc. London, A, Vol 228,1955, p 191–204

    Google Scholar 

  14. D. Tabor, Junction Growth in Metallic Friction: The Role of Combined Stresses and Surface Contamination,Proc. Roy. Soc. London, A, Vol 251,1959, p 378–393

    CAS  Google Scholar 

  15. J.E. Merwin and K.L. Johnson, An Analysis of Plastic Deformation in Rolling Contact,Proc. Instit.Mech.Eng., Vol 177,1963, p 676–690

    Google Scholar 

  16. N. Bay, T. Wanheim, and A.S. Peteresen, Ra and the Average Effective Strain of Surface Asperities Deformed in Metal Working,Wear, Vol 34,1975, p 77–84

    Article  Google Scholar 

  17. N.P. Suh, An Overview of the Delamination Theory of Wear,Wear,Vol44,1977, p 1–16

    Article  Google Scholar 

  18. J.M. Challen and P.L.B. Oxley, An Explanation of the Different Regimes of Friction and Wear Using Asperity Deformation Mod- els,Wear, Vol 53,1979, p 229–243

    Article  Google Scholar 

  19. N.P. Suh and H.C. Sin, The Genesis of Friction,Wear, Vol 69, 1981,p91–114

    Article  CAS  Google Scholar 

  20. T. Abildgaard and T. Wanheim, An Investigation into the Mecha- nisms of Abrasive Wear and Processing of Materials,Proc. 2nd Cairo University Mechanical Design and Production Conf., 1982, p 521-529

  21. B. Avitzur, C.K. Huang, and Y.D. Zhu, A Friction Model Based on the Upper-Bound Approach to the Ridge and Sublayer Deforma- tions,Wear, Vol 95, 1984, p 59–77

    Article  Google Scholar 

  22. J.M. Challen, L.J. McLean, and P.L.B. Oxley, Plastic Deforma- tion of a Metal Surface in Sliding Contact with a Hard Wedge: Its Relation to Friction and Wear,Proc. R. London A, Vol 394,1984, p 161–181

    Google Scholar 

  23. K.L. Johnson,Contact Mechanics, Cambridge Univ. Press, 1985

  24. B. Avitzur and Y. Nakamura, Analytical Determination of Fric- tion Resistance as a Function of Normal Load and Geometry of Surface Irregularities,Wear, Vol 107, 1986, p 367–383

    Article  Google Scholar 

  25. K.L. Johnson, The Mechanics of Plastic Deformation of Surface and Subsurface Layers in Rolling and Sliding Contact,Key Eng. Maters., Vol 33, 1989, p 17–34

    Article  Google Scholar 

  26. D.B. Dawson, J.S. Korellis, P.S. McCafferty, D.A. Hughes, and L.I. Weingarten, Friction and Near Surface Deformation at Slid- ing Interfaces, submitted for publication

  27. R. Alani and P. R. Swann, Recent Advances in Ion Milling Tech- niques and Instrumentation for TEM Specimen Preparation of Materials, inProceedings of the ACEM-12 and ANZSCB-11 Joint Conference on Electron Microscopy, Feb 1992, Perth, Australia

  28. B. Bay, N. Hansen, D.A. Hughes, and D. Kuhlmann-Wilsdorf, Evolution of fcc Deformation Structures in Polyslip,Acta Metall. Mater., Vol 40, 1992, p 205–219

    Article  CAS  Google Scholar 

  29. D.A. Hughes and N. Hansen, Microstructural Evolution in Nickel during Rolling to Large Strains,Metall. Trans. A, Vol 24A, 1993, p 2021–2037

    CAS  Google Scholar 

  30. J. Gil Sevillano, P. van Houtte, and E. Aernoudt, Large Strain Work Hardening and Textures,Prog. Mater. Sci., Vol 25,1981, p 69–412

    Article  Google Scholar 

  31. J. Alberdi, “Grandes Deformaciones Plasticas en Frio en Policris- tales de Cobre y Aluminio (Torsion),” PhD. Thesis, Universidad de Navarra Facultad de Ciencias, San Sebastian, 1984

    Google Scholar 

  32. D.A. Hughes and W.D. Nix, Strain Hardening and Substructural Evolution in Ni-Co Solid Solutions at Large Strains,Mater. Sci. Eng., Vol A122, 1989, p 153–172

    CAS  Google Scholar 

  33. B. Bay, N. Hansen, and D. Kuhlmann-Wilsdorf, Microstructural Evolution in Rolled Aluminum,Mater. Sci. Eng., Vol A158,1992, p 139–146

    CAS  Google Scholar 

  34. N. Hansen and D. Juul Jensen, Mechanisms of Deformation, Recovery and Recrystallization of Aluminum,Hot Deformation of Aluminum Alloys, T.G. Langdon et al., Ed., TMS, 1991, p 3–19

  35. D.A. Hughes and N. Hansen, A Comparison of the Evolution of Cold and Hot Deformation Microstructures and Textures in fee Metals,Advances in Hot Deformation Textures and Microstructures, T. Bieler, K. Bowman, and J.J. Jonas, Ed., TMS, in press, 1994

  36. D. Kuhlmann-Wilsdorf, Theory of Plastic Deformation: Properties of Low Energy Dislocation Structures,Mater. Sci. Eng., Vol A133,1989, p 1–41

    Google Scholar 

  37. N. Hansen, Cold Deformed Microstructures,Mater. Sci. Tech- nol., Vol 6,1990, p 1039–1047

    CAS  Google Scholar 

  38. B. Bay, N. Hansen, and D. Kuhlmann-Wilsdorf, Deformation Structures in Lightly Rolled Pure Aluminum,Mater. Sci. Eng., Vol A113,1989, p 385–397

    CAS  Google Scholar 

  39. D.A. Hughes and N. Hansen, Microstructural Evolution in Nickel during Rolling and Torsion,Mater. Sci. Technol., Vol 7, 1991, p 544–553

    CAS  Google Scholar 

  40. V.S. Ananthan, T. Leffers, and N. Hansen, Cell and Band Structure in Cold-Rolled Polycrystalline Copper,Mater. Sci. Technol., Vol 7,1991, p 1069–1075

    CAS  Google Scholar 

  41. G.I. Taylor, Plastic Strain in Metals,J, Inst. Met., Vol 62,1938,p 307–324

    Google Scholar 

  42. D. Kuhlmann-Wilsdorf and N. Hansen, Geometrically Neces- sary, Incidental and Subgrain Boundaries,Scripta Metall. Mater., Vol 25,1991, pI 557–1562

    Article  Google Scholar 

  43. R.W.K. Honeycombe,The Plastic Deformation of Metals, 2nd ed., Edward Arnold, 1984, p 213

  44. G.T. Gray III, P.S. Follansbee, and C.E. Frantz, Effect of Residual Strains on the Substructure Development and Mechanical Re- sponse of Shock-Loaded Copper,Mater. SCi. Engr, Vol A111, 1989, p 9–16

    Article  CAS  Google Scholar 

  45. D. Kuhlmann-Wilsdorf and N. Hansen, Theory of Work Harden- ing Applied to Stages IV and III,Metall. Trans. A, Vol 20,1989, p 2393–2397

    Google Scholar 

  46. U.S. Lindholm, A. Nagy, G.R. Johnson, and J.M. Hoegfeldt, Large Strain, High Strain Rate Testing of Copper,Trans. ASMEJ. Eng. Mater. and Tech., Vol 102, 1980, p 376–381

    CAS  Google Scholar 

  47. J.R. Fleming and N.P. Suh, Mechanics of Crack Propagation,Wear, Vol 44,1977, p 39–56

    Article  Google Scholar 

  48. D.A. Hills and D.W. Ashelby, On the Determination of Stress In- tensification Factors for a Wearing Half Space,Eng. Fract Mech.,Vol 13, 1980, p 69–78

    Article  Google Scholar 

Download references

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Hughes, D.A., Dawson, D.B., Korellls, J.S. et al. Near surface microstructures developing under large sliding loads. JMEP 3, 459–475 (1994). https://doi.org/10.1007/BF02645312

Download citation

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF02645312

Keywords

Navigation