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General directions in contact modelling development

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This paper presents a survey of works, selected from the period of the last twenty years, on deformations in the contact between rough surfaces. All the selected works use FEM. They deal with the modelling of individual contact asperities or the use of experiment to verify contact models. First, research directions connected with the modelling of single asperities, whose shape is usually approximated with that of a hemisphere or a half cylinder, are presented. Section 3 discusses research directions concerning models which include the layer under asperities, and models for small contact surfaces (about 1 mm2). Section 4 reviews directions in contact modelling which takes into account neighbouring asperities and laterally loaded asperities. Section 5 discusses directions in the development of models and experiments used or suitable for verifying models. Finally, conclusions concerning accurate contact deformation modelling are presented.
Słowa kluczowe
Rocznik
Strony
91--109
Opis fizyczny
Bibliogr. 27 poz., rys.
Twórcy
  • Wroclaw University of Science and Technology, Department of Machine Tools and Mechanical Technologies, Wroclaw, Poland
  • Wroclaw University of Science and Technology, Department of Machine Tools and Mechanical Technologies, Wroclaw, Poland
Bibliografia
  • [1] LIU G., WANG Q.J., LIN C., 1999, A Survey of Current Models for Simulating the Contact between Rough Surfaces, Tribology Transactions, 42/3, 581–591, DOI: 10.1080/10402009908982257.
  • [2] ADAMS G.G., NOSONOVSKY M., 2000, Contact modelling–forces, Tribology International, 33/5–6, 431–442.
  • [3] GHAEDNIA H., WANG X., SAHA S, XU Y., SHARMA A., JACKSON R.L., 2018, A Review of Elastic-Plastic Contact Mechanics, Applied Mechanics Reviews, 69/6. DOI: 10.1115/1.4038187
  • [4] JAMARI J., SCHIPPER D.J., 2008, Deterministic repeated contact of rough surfaces, Wear 264, 349–358.
  • [5] MAKODOŃSKI Z., 1980, A mathematical model of the contact between two real flat surfaces and of their deformations, Habilitation Thesis, Wroclaw University of Technology, (in Polish).
  • [6] MACIOLKA P., 2015. Experimental investigation of flat surfaces in contact, Journal of Machine Engineering, 15/2, 92–103.
  • [7] GOERKE D., WILLNER K., 2009, Experimental setup for normal contact stiffness measurement of technical surfaces with geometrical irregularities, Experimental Techniques, 33/66, 46–52, DOI: 10.1111/j.1747-1567.2008.00448.x.
  • [8] ITO Y., 2008, Modular Design for Machine Tools, ISBN 13: 9780071496605.
  • [9] HERTZ H., 1881, Über die Berührung fester elastischer Köper, J. Reine and Angewandte Mathematik, 92, 156–171.
  • [10] VU-QUOC L., ZHANG X., 1999, An elastoplastic contact force – displacement model in the normal direction: displacement-driven version , Proc. R. Soc. Lond. A, 455, 4013–4044.
  • [11] NÉDER Z., VÁRADI K., 2001, Contact behaviour of the original and substituted real Surfaces, International Journal of Machine Tools & Manufacture, 41, 1935–1939.
  • [12] SELLGREN U., BJÖRKLUND S., ANDERSSON S., 2003, A finite element-based model of normal contact between rough surfaces, Wear 254, 1180–1188, DOI: 10.1016/S0043-1648(03)00332-6.
  • [13] MACIOLKA P., JEDRZEJEWSKI J., 2017, Evaluation of different approaches to 3d numerical model development of the contact zone between elementary asperities and flat surface. Journal of Machine Engineering, 17/4, 40–53.
  • [14] JACKSON R.L., GREEN I., 2005, A finite element study of elasto-plastic hemispherical contact against a rigid flat, ASME Journal of Tribology, 127/2, 343–354, DOI: 10.1115/1.1866166.
  • [15] PEI L., HYUN S., MOLINARI J.F., ROBBINS M.O., 2005, Finite element modelling of elasto-plastic contact between rough surfaces, Journal of the Mechanics and Physics of Solids, 53, 2385–2409.
  • [16] STUPKIEWICZ, S., SADOWSKI, P., 2006, Micromechanical analysis of deformation and temperature inhomogeneities within rough contact layers, Analysis and simulation of contact problems, Volume 27 Lecture Notes in Applied and Computational Mechanics, Springer Verlag, Berlin, 325–332.
  • [17] YEO C.D., KATTA R.R., POLYCARPOU A.A., 2009, Improved elastic contact model accounting for asperity and bulk substrate deformation , Tribol. Lett., 35, 191–203.
  • [18] GREENWOOD J. A., WILLIAMSON J. B. P., 1966, Contact of nominally flat surfaces, Proc. Roy. Soc. London A, 295, 300–319.
  • [19] ARDITO R., CORIGLIANO A., FRANGI A., 2010, Finite element modelling of adhesion phenomena in MEMS (micro-electro-mechanical systems). Proceedings 11th International Conference on Thermal, Mechanical and Multi-Physics Simulation, and Experiments in Microelectronics and Microsystems, EuroSimE 2010., IEEE Xplore, DOI: 10.1109/ESIME.2010.5464550.
  • [20] SAHOO P., CHATTERJEE B., ADHIKARY D., 2010, Finite element based elastic-plastic contact behaviour of a sphere against a rigid flat – effect of strain hardening, International Journal of Engineering and Technology, 2/1, 1–6.
  • [21] KOGUT L, ETSION I., 2002, Elastic-plastic contact analysis of a sphere and a rigid flat, Trans. ASME, J. Appl. Mech., 69/5, 657–662.
  • [22] BRYANT M.J., EVANS H.P., SNIDLE R.W., 2012, Plastic deformation in rough surface line contacts – a finite element study, Tribology International, 46, 269–278.
  • [23] YASTREBOV V.A., DURAND J., PROUDHON H., CAILLETAUD G., 2011, Rough surface contact analysis by means of the Finite Element Method and of a new reduced model, C. R. Mecanique, 339, 473–490.
  • [24] POULIOS K., KLIT P., 2013, Implementation and applications of a finite-element model for the contact between rough surfaces, Wear, 303/1–2, 1–8.
  • [25] KUCHARSKI S., STARZYNSKI G., 2014, Study of contact of rough surfaces: Modelling and experiment, Wear, 311, 167–179.
  • [26] MACIOLKA P., JEDRZEJEWSKI J., GROCHOWSKI M., 2014, A device for the experimental investigation of surface contact under load, Journal of Machine Engineering, 14/3, 97–112.
  • [27] XU Y., CHEN Y., ZHANG A., JACKSON R.L., PROROK B.C., 2018, A new method for the measurement of real area of contact by the adhesive transfer of thin Au film, Tribol. Lett., 66, 32.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-a17a927c-72c6-4c1c-aec3-0db45fa94993
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