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Original Articles

Friction in Highly Loaded Mixed Lubricated Point Contacts

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Pages 360-369 | Received 15 Jul 2004, Accepted 17 Oct 2008, Published online: 03 Mar 2009

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Read on this site (2)

Abdul Mannan, Matthew L. Pozzebon, William J. T. Daniel & Paul A. Meehan. (2023) Temperature Effect on Load Distribution, Friction, and Wear of a Grease-Lubricated Spherical Roller Bearing (SRB). Tribology Transactions 66:1, pages 144-161.
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Matthew L. Pozzebon, Chih-Ling Lin & Paul A. Meehan. (2020) On the Modeling of Wear in Grease-Lubricated Spherical Roller Bearings. Tribology Transactions 63:5, pages 806-819.
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Articles from other publishers (20)

Deepak Kumar Prajapati, Jitendra Kumar Katiyar & Chander Prakash. (2023) Machine learning approach for the prediction of mixed lubrication parameters for different surface topographies of non-conformal rough contacts. Industrial Lubrication and Tribology 75:9, pages 1022-1030.
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Xin Yu, Yunyun Sun & Shijing Wu. (2023) Analytically decoupling of friction coefficient between mixed lubricated fractal surfaces. International Journal of Mechanical Sciences 255, pages 108465.
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Erik G. de Vries, Branco S. van Minnen, Yinglei Wu, David T.A. Matthews & Emile van der Heide. (2023) Tribological behaviour of a synthetic synovial fluid and polyurethane in biomedical implants. Biotribology 33-34, pages 100242.
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Tie-jun Li, Yan-hong Yang, Yi-min Zhang & Chun-yu Zhao. (2022) Online Friction–Thermal–Load Coupling Model of an Arbitrary Curve Contact Under Mixed Lubrication Considering Actual Operating Conditions. Journal of Tribology 144:11.
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Tie-Jun Li, Meng-Zhuo Wang & Chun-Yu Zhao. (2021) Study on real-time thermal–mechanical–frictional coupling characteristics of ball bearings based on the inverse thermal network method. Proceedings of the Institution of Mechanical Engineers, Part J: Journal of Engineering Tribology 235:11, pages 2335-2349.
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Deepak K Prajapati. (2021) Prediction of coefficient of friction for different surface topography in mixed-EHL regime. Surface Topography: Metrology and Properties 9:1, pages 015008.
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G.N. de Boer, N. Raske, S. Soltanahmadi, D. Dowson, M.G. Bryant & R.W. Hewson. (2020) A porohyperelastic lubrication model for articular cartilage in the natural synovial joint. Tribology International 149, pages 105760.
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Dequan Huang, Zhonghou Wang, Gang Li & Weidong Zhu. (2019) Conjugate approach for hypoid gears frictional loss comparison between different roughness patterns under mixed elastohydrodynamic lubrication regime. Tribology International 140, pages 105884.
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Deepak K. Prajapati & Mayank Tiwari. (2019) Effect of topography parameter, load, and surface roughness on friction coefficient in mixed lubrication regime. Lubrication Science 31:5, pages 218-228.
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T. Zapletal, P. Sperka, I. Krupka & M. Hartl. (2018) The effect of surface roughness on friction and film thickness in transition from EHL to mixed lubrication. Tribology International 128, pages 356-364.
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Amir Torabi, Saleh Akbarzadeh, Mohammadreza Salimpour & M.M. Khonsari. (2018) On the running-in behavior of cam-follower mechanism. Tribology International 118, pages 301-313.
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Amir Torabi, Saleh Akbarzadeh & Mohammadreza Salimpour. (2016) Comparison of tribological performance of roller follower and flat follower under mixed elastohydrodynamic lubrication regime. Proceedings of the Institution of Mechanical Engineers, Part J: Journal of Engineering Tribology 231:8, pages 986-996.
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Amir Torabi, Saleh Akbarzadeh & Mohammad Reza Salimpour. (2016) Mixed Thermo elastohydrodynamic lubrication analysis of finite length cam and follower mechanism. Journal of Mechanical Science and Technology 30:3, pages 1295-1303.
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Amir Torabi, Saleh Akbarzadeh, Mohammad Reza Salimpour & Morteza Taei. (2015) Effect of surface roughness pattern on transient mixed elastohydrodynamic lubrication. Surface Topography: Metrology and Properties 4:1, pages 015001.
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Ran Gong, Chao Zhou, Huajun Che, Maotao Zhu & Xiaoming Xu. (2015) Analytical and experimental study on the sliding contact of the sealing ring in the wet clutch. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering 229:12, pages 1628-1637.
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Aydar Akchurin, Rob Bosman, Piet M. Lugt & Mark van Drogen. (2015) On a Model for the Prediction of the Friction Coefficient in Mixed Lubrication Based on a Load-Sharing Concept with Measured Surface Roughness. Tribology Letters 59:1.
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Yuki Ono & Kenji Matsumoto. Effect of Surface Irregularities of Piston Ring and Sleeve Materials in High-Speed Reciprocating Test. Effect of Surface Irregularities of Piston Ring and Sleeve Materials in High-Speed Reciprocating Test.
M. Bazrafshan, H. Ahmadian & H. Jalali. (2014) Modeling the interaction between contact mechanisms in normal and tangential directions. International Journal of Non-Linear Mechanics 58, pages 111-119.
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Zhiheng Feng, Shilong Wang, Teik C. Lim & Tao Peng. (2011) Enhanced friction model for high-speed right-angle gear dynamics. Journal of Mechanical Science and Technology 25:11, pages 2741-2753.
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H. Sojoudi & M. M. Khonsari. (2010) On the Behavior of Friction in Lubricated Point Contact With Provision for Surface Roughness. Journal of Tribology 132:1.
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