Have a personal or library account? Click to login
Influence of Surface Texture Parameters on Friction Characteristics Under Starved Lubrication Cover

Influence of Surface Texture Parameters on Friction Characteristics Under Starved Lubrication

By: Shen Wu,  Pan Zhang,  Haijun Wei and  Lei Chen  
Open Access
|Jul 2020

References

  1. 1. Lu X, Li Q, Zhang W, Guo Y, He T, Zou D. (2013) Thermal analysis on piston of marine diesel engine. Applied Thermal Engineering. 50:168–76.10.1016/j.applthermaleng.2012.06.021
  2. 2. Zabala B, Igartua A, Fernandez X, Priestner C, Ofner H, Knaus O, et al. (2017) Friction and wear of a piston ring/cylinder liner at the top dead centre: Experimental study and modelling. Tribology International. 106:23–33.10.1016/j.triboint.2016.10.005
  3. 3. Gropper D, Wang L, Harvey TJ. (2016) Hydrodynamic lubrication of textured surfaces: a review of modeling techniques and key findings. Tribology International. 94:509–29.10.1016/j.triboint.2015.10.009
  4. 4. Koura MM. (1980) The effect of surface texture on friction mechanisms. Wear. 63:1–12.10.1016/0043-1648(80)90069-1
  5. 5. Kumar CP, Menezes PL, Kailas SV. (2008) Role of surface texture on friction under boundary lubricated conditions. Tribology Online. 3:12–8.10.2474/trol.3.12
  6. 6. Li J, Xiong D, Dai J, Huang Z, Tyagi R. (2010) Effect of surface laser texture on friction properties of nickel-based composite. Tribology International. 43:1193–9.10.1016/j.triboint.2009.12.044
  7. 7. Etsion I. (2004) Improving tribological performance of mechanical components by laser surface texturing. Tribology Letters. 17:733–7.10.1007/s11249-004-8081-1
  8. 8. Arslan A, Masjuki HH, Varman M, Kalam MA, Quazi MM, Mahmud KAHA, et al. (2015) Effects of texture diameter and depth on the tribological performance of DLC coating under lubricated sliding condition. Applied Surface Science. 356:1135–49.10.1016/j.apsusc.2015.08.194
  9. 9. Wang X, Kato K, Adachi K. (2002) The lubrication effect of micro-pits on parallel sliding faces of SiC in water. Tribology Transactions. 45:294–301.10.1080/10402000208982552
  10. 10. Wang X, Kato K, Adachi K, Aizawa K. (2003) Loads carrying capacity map for the surface texture design of SiC thrust bearing sliding in water. Tribology International. 36:189–97.10.1016/S0301-679X(02)00145-7
  11. 11. Ronen A, Etsion I, Kligerman Y. (2001) Friction-reducing surface-texturing in reciprocating automotive components. Tribology Transactions. 44:359–66.10.1080/10402000108982468
  12. 12. Johansson S, Nilsson PH, Ohlsson R, Rosen B. (2011) Experimental friction evaluation of cylinder liner/piston ring contact. Wear. 271:625–33.10.1016/j.wear.2010.08.028
  13. 13. Caramia G, Carbone G, De Palma P. (2015) Hydrodynamic lubrication of micro-textured surfaces: Two dimensional CFD-analysis. Tribology International. 88:162–9.10.1016/j.triboint.2015.03.019
  14. 14. Pettersson U, Jacobson S. (2003) Influence of surface texture on boundary lubricated sliding contacts. Tribology International. 36:857–64.10.1016/S0301-679X(03)00104-X
  15. 15. Ren N, Nanbu T, Yasuda Y, Zhu D, Wang Q. (2007) Micro textures in concentrated-conformal-contact lubrication: effect of distribution patterns. Tribology Letters. 28:275–85.10.1007/s11249-007-9271-4
  16. 16. Syed I, Sarangi M. (2014) Hydrodynamic lubrication with deterministic micro textures considering fluid inertia effect. Tribology International. 69:30–8.10.1016/j.triboint.2013.08.011
  17. 17. Menezes PL. (2016) Surface texturing to control friction and wear for energy efficiency and sustainability. The International Journal of Advanced Manufacturing Technology. 85:1385–94.10.1007/s00170-015-8058-2
  18. 18. Tang W, Zhou Y, Zhu H, Yang H. (2013) The effect of surface texturing on reducing the friction and wear of steel under lubricated sliding contact. Applied Surface Science. 273:199–204.10.1016/j.apsusc.2013.02.013
  19. 19. Wakuda M, Yamauchi Y, Kanzaki S, Yasuda Y. (2003) Effect of surface texturing on friction reduction between ceramic and steel materials under lubricated sliding contact. Wear. 254:356–63.10.1016/S0043-1648(03)00004-8
  20. 20. Wroblewski E, Finke S. (2017) Test bench measurement of friction loss in combustion engine. Combustion Engines.10.19206/CE-2017-107
  21. 21. Etsion I, Burstein L. (1996) A model for mechanical seals with regular microsurface structure. Tribology Transactions. 39:677–83.10.1080/10402009608983582
  22. 22. Dowson D, Taylor CM. (1979) Cavitation in bearings. Annual Review of Fluid Mechanics. 11:35–65.10.1146/annurev.fl.11.010179.000343
  23. 23. Spikes HA. (1993) Boundary lubrication and boundary films. Tribology and Interface Engineering Series. 25:331–46.10.1016/S0167-8922(08)70389-4
  24. 24. Menezes PL, Kishore, Kailas SV. (2008) Role of surface texture and roughness parameters in friction and transfer layer formation under dry and lubricated sliding conditions. International Journal of Materials Research. 99:795–807.10.3139/146.101699
  25. 25. Ma C, Gu W, Tu Q, Sun J, Bo Y. (2016) Experimental investigation on frictional property of mechanical seals with varying dimple diameter along the radial face. Advances in Mechanical Engineering. 8(8), 677-683.10.1177/1687814016664837
  26. 26. Kurniawan R, Kiswanto G, Ko TJ. (2017) Surface roughness of two-frequency elliptical vibration texturing (TFEVT) method for micro-dimple pattern process. International Journal of Machine Tools & Manufacture. 116:77–95.10.1016/j.ijmachtools.2016.12.011
DOI: https://doi.org/10.2478/pomr-2020-0031 | Journal eISSN: 2083-7429 | Journal ISSN: 1233-2585
Language: English
Page range: 96 - 106
Published on: Jul 17, 2020
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2020 Shen Wu, Pan Zhang, Haijun Wei, Lei Chen, published by Gdansk University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.