214
Views
2
CrossRef citations to date
0
Altmetric
Research Article

Comprehensive characterisation of tribo-layer in a Cu-15Ni-8Sn alloy during dry sliding wear

, , , , &
Pages 57-68 | Received 10 Sep 2021, Accepted 26 Dec 2021, Published online: 12 Jan 2022

References

  • Zhu J, Ma L, Dwyer-Joyce RS. Friction and wear of Cu-15 wt%Ni-8 wt%Sn bronze lubricated by grease at room and elevated temperature. Wear. 2020;460–461:203474.
  • Zhang SZ, Jiang BH, Ding WJ. Wear of Cu-15Ni-8Sn spinodal alloy. Wear. 2008;264(3–4):199–203.
  • Zhang S, Jiang B, Ding W. Dry sliding wear of Cu-15Ni-8Sn alloy. Tribol Int. 2010;43(1–2):64–68.
  • Cheng J, Mao M, Gan X, et al. Microstructures, mechanical properties, and grease-lubricated sliding wear behavior of Cu-15Ni-8Sn-0.8Nb alloy with high strength and toughness. Friction. 2021;9(5):1061–1076.
  • Zhang S Zhong, Gan X Ping, Cheng J Juan, et al. Effect of applied load on transition behavior of wear mechanism in Cu−15Ni−8Sn alloy under oil lubrication. J Cent South Univ. 2017;24(8):1754–1761.
  • Cribb WR, Grensing FC. Spinodal copper alloy C72900 – new high strength antifriction alloy system. Can Metall Quart. 2011;50(3):232–239.
  • Raymond W, Gedeon MJ, Grensing FC. Performance advances in copper-nickel-tin spinodal alloys. Adv Mater Process. 2013;171(9):20–25.
  • Cribb WR. Copperspinodal alloys for aerospace. Adv Mater Process. 2006;164(6):44.
  • Chen Z, Bao C, Wu G, et al. Effects of YAl2 reinforced particles on the tribological properties of LA143 alloy under dry sliding condition. Wear. 2019;438–439:203077.
  • Rigney DA. Transfer, mixing and associated chemical and mechanical processes during the sliding of ductile materials. Wear. 2000;245(1–2):1–9.
  • Dryzek J. Detection of tribolayer in different metals using positron lifetime spectroscopy. Tribol Int. 2019;131:268–276.
  • Dryzek J, Wróbel M. Detection of dynamical recrystallization in a tribolayer of pure molybdenum using positron annihilation and EBSD techniques. Wear. 2021;466–467:203524.
  • Riahi AR, Alpas AT. The role of tribo-layers on the sliding wear behavior of graphitic aluminum matrix composites. Wear. 2001;250–251(1–12):1396–1407.
  • Li XY, Tandon KN. Mechanical mixing induced by sliding wear of an Al-Si alloy against M2 steel. Wear. 1999;225–229:640–648.
  • Li XY, Tandon KN. Microstructural characterization of mechanically mixed layer and wear debris in sliding wear of an Al alloy and an Al based composite. Wear. 2000;245(1–2):148–161.
  • Subramanian C. On mechanical mixing during dry sliding of aluminium-12.3wt.%silicon alloy against copper. Wear. 1993;161(1–2):53–60.
  • Jiang J, Stott FH, Stack MM. A mathematical model for sliding wear of metals at elevated temperatures. Wear. 1995;181-183:20–31.
  • Chu K, Ren F, Zhu W, et al. Sliding wear induced subsurface microstructural evolution in nanocrystalline Nb-Ag binary alloys and its impact on tribological performance. Wear. 2017;392-393:69–76.
  • Ren F, Bellon P, Averback RS. Nanoscale self-organization reaction in Cu–Ag alloys subjected to dry sliding and its impact on wear resistance. Tribol Int. 2016;100:420–429.
  • Cai W, Bellon P. Subsurface microstructure evolution and deformation mechanism of Ag-Cu eutectic alloy after dry sliding wear. Wear. 2013;303(1–2):602–610.
  • Rigney DA, Hammerberg JE. Unlubricated sliding behavior of metals. MRS Bull. 1998;23(6):32–36.
  • Panin V, Kolubaev A, Tarasov S, et al. Subsurface layer formation during sliding friction. Wear. 2001;249(10–11):860–867.
  • Emge A, Karthikeyan S, Rigney DA. The effects of sliding velocity and sliding time on nanocrystalline tribolayer development and properties in copper. Wear. 2009;267(1–4):562–567.
  • Prasad S V, Battaile CC, Kotula PG. Friction transitions in nanocrystalline nickel. Scr Mater. 2011;64(8):729–732.
  • Rupert TJ, Schuh CA. Sliding wear of nanocrystalline Ni-W: structural evolution and the apparent breakdown of Archard scaling. Acta Mater. 2010;58(12):4137–4148.
  • Singh JB, Cai W, Bellon P. Dry sliding of Cu-15 wt%Ni-8 wt%Sn bronze: wear behaviour and microstructures. Wear. 2007;263(1–6):830–841.
  • Singh JB, Wen JG, Bellon P. Nanoscale characterization of the transfer layer formed during dry sliding of Cu-15 wt.% Ni-8 wt.% Sn bronze alloy. Acta Mater. 2008;56(13):3053–3064.
  • Feng C, Wang Y, Chen W, et al. The mechanical mixed layer and its role in Cu-15Ni-8Sn/graphite composites. Tribol Trans. 2017;60(1):135–145.
  • Zhao JC, Notis MR. Spinodal decomposition, ordering transformation, and discontinuous precipitation in a Cu-15Ni-8Sn alloy. Acta Mater. 1998;46(12):4203–4218.
  • Spooner S, Lefevre BG. The effect of prior deformation on spinodal age hardening in Cu-15 Ni-8 Sn alloy. Metall Trans A. 1980;11(7):1085–1093.
  • Guo Z, Jie J, Liu S, et al. Solidification characteristics and segregation behavior of Cu-15Ni-8Sn alloy. Metall Mater Trans A. 2020;51(3):1229–1241.
  • Guo Z, Jie J, Liu S, et al. Suppression of discontinuous precipitation in age-hardening Cu-15Ni-8Sn alloy by addition of V. J Alloys Compd. 2020;813:152229.
  • Zhang G, Liu S, Chen C, et al. Effect of heat treatment on microstructure and mechanical properties of a selective laser melted Cu–15Ni–8Sn alloy. Mater Sci Eng A. 2019;763:138132.
  • Zhao C, Zhang W, Wang Z, et al. Improving the mechanical properties of Cu-15Ni-8Sn alloys by addition of titanium. Materials (Basel). 2017;10(9):1038.
  • Wang K, Tao NR, Liu G, et al. Plastic strain-induced grain refinement at the nanometer scale in copper. Acta Mater. 2006;54(19):5281–5291.
  • Dryzek J, Wróbel M. Evolution and thermal stability of the subsurface zone in copper formed in dry and lubricated sliding tests studied by positron annihilation and EBSD techniques. Wear. 2021;486–487:204077.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.