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Articles

Improvement of current-carrying tribological behaviour via laser surface texture

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Pages 572-583 | Received 03 Jun 2023, Accepted 18 Jul 2023, Published online: 25 Jul 2023

References

  • Slade PG. Electrical contacts: principles and applications. New York: CRC Press; 2017.
  • Kloch KT, Kozak P, Mlyniec A. A review and perspectives on predicting the performance and durability of electrical contacts in automotive applications. Eng Fail Anal. 2021;121:105143, doi:10.1016/j.engfailanal.2020.105143
  • Grandin M, Wiklund U. Friction, wear and tribofilm formation on electrical contact materials in reciprocating sliding against silver-graphite. Wear. 2013;302(1-2):1481–1491. doi:10.1016/j.wear.2013.02.007
  • Ren WB, Wang P, Song J, et al. Effects of current load on wear and fretting corrosion of gold-plated electrical contacts. Tribol Int. 2014;70:75–82. doi:10.1016/j.triboint.2013.09.024
  • Li YC, Huang JX, Wang M, et al. Microstructure and current carrying wear behaviors of copper/sintered-carbon composites for pantograph sliders. Met Mater Int. 2021;27:3398–3408. doi:10.1007/s12540-020-00652-6
  • Wang DW, Chen X, Li FQ, et al. Effect of surface texture on the tribological behavior of sliding electrical contact interface. Surf Topogr Metrol. 2023;11(2):0025008, doi:10.1088/2051-672X/acd075
  • Angadi SV, Jackson RL, Pujar V, et al. A comprehensive review of the finite element modeling of electrical connectors including their contacts. IEEE Trans Compon Packag Manuf Technol. 2020;10(5):836–844. doi:10.1109/TCPMT.2020.2982207.
  • Zuo X, Xie W, Zhou YK. Influence of electric current on the wear topography of electrical contact surfaces. J Tribol-T ASME. 2022;144(7):071702, doi:10.1115/1.4053585
  • Chen TH, Song CF, Liu ZL, et al. Effect of elastic contact force on tribological characteristics of current-carrying roll rings in rotating conductive joints. Tribol Trans. 2023;66(1):175–184. doi:10.1080/10402004.2022.2153773
  • Grandin M, Wiklund U. Influence of mechanical and electrical load on a copper/copper-graphite sliding electrical contact. Tribol Int. 2018;121:1–9. doi:10.1016/j.triboint.2018.01.004
  • Zhao H, Feng Y, Zhou ZJ, et al. Effect of electrical current density, apparent contact pressure, and sliding velocity on the electrical sliding wear behavior of Cu-Ti3AlC2 composites. Wear. 2020;444–445:203156, doi:10.1016/j.wear.2019.203156
  • Laporte J, Perrinet O, Fouvry S. Prediction of the electrical contact resistance endurance of silver-plated coatings subject to fretting wear, using a friction energy density approach. Wear. 2015;330–331:170–181. doi:10.1016/j.wear.2014.12.006
  • Adeyemi K, Sun B, Xue W, et al. Friction and wear characteristics modification via laser surface textured grooves. Surf Eng. 2021;37(5):658–668. doi:10.1080/02670844.2020.1821572
  • Qiao C, Yu J, Zhang S, et al. Combined effect of a laser cladded coating and surface texture on tribological performance under dry sliding and starved lubrication. Met Mater Int. 2022;28(3):666–678. doi:10.1007/s12540-021-01138-9
  • Moravčíková J, Moravčík R, Kusý M, et al. Influence of laser surface texturing on tribological performance of tool steels. J Mater Eng Perform. 2018;27(10):5417–5426. doi:10.1007/s11665-018-3607-0
  • Hua X, Puoza JC, Zhang P. The influence of laser surface texture on the tribological properties of friction layer materials in ultrasound motors. Proc IMechE, Part J: J Eng Tribol. 2022;236(6):1123–1132. doi:10.1177/13506501211052763
  • Radhakrishnan J, Diaz M, Cordovilla F, et al. Tunable superhydrophobic titanium nitride surface by ultrafast laser processing. Ceram Int. 2022;48(24):37264–37274. doi:10.1016/j.ceramint.2022.08.304
  • Radhakrishnan J, Diaz M, Cordovilla F, et al. Water droplets impact dynamics on laser engineered superhydrophobic ceramic surface. Opt Laser Technol. 2023;158:108887, doi:10.1016/j.optlastec.2022.108887
  • Wang DW, Li FQ, Chen X, et al. Effect of two graphene coatings on the friction and wear of sliding electrical contact interface. Lubricants. 2022;10(11):305, doi:10.3390/lubricants10110305
  • Cao ZF, Xia YQ, Liu LH, et al. Study on the conductive and tribological properties of copper sliding electrical contacts lubricated by ionic liquids. Tribol Int. 2019;130:27–35. doi:10.1016/j.triboint.2018.08.033
  • Di Bartolomeo M, Lacerra G, Baillet L, et al. Parametrical experimental and numerical analysis on friction-induced vibrations by a simple frictional system. Tribol Int. 2017;112:47–57. doi:10.1016/j.triboint.2017.03.032
  • Xu C, Li B, Wu T. Wear characterization under sliding–rolling contact using friction-induced vibration features. Proc IMechE, Part J: J Eng Tribol. 2022;236(4):634–647. doi:10.1177/13506501211029798
  • Liu MQ, Mo JL, Wang DW, et al. The influence of the angular distribution of a grooved surface texturing on the generation of friction-induced vibration and noise. Proc IMechE, Part J: J Eng Tribol. 2018;232(8):1036–1045. doi:10.1177/1350650117705568
  • Wang DW, Mo JL, Ouyang H, et al. Experimental and numerical studies of friction-induced vibration and noise and the effects of groove-textured surfaces. Mech Syst Signal Process. 2014;46(2):191–208. doi:10.1016/j.ymssp.2014.02.007

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