280
Views
6
CrossRef citations to date
0
Altmetric
Original Articles

Effect of Expanded Graphite on the Tribological Behavior of Tin–Bronze Fiber Brushes Sliding against Brass

, , &
Pages 1-8 | Received 15 Nov 2018, Accepted 27 Jun 2019, Published online: 05 Nov 2019

References

  • Elger, W. (2008), “Development of Metal Fiber Electrical Brushes for 500 kW SSMG Sets,” Naval Engineers Journal, 117(4), pp 37–44.
  • Zhou, K. C., Xiao, J. K., Zhang, L., Xie, X. L., and Li, Z. Y. (2015), “Tribological Behavior of Brass Fiber Brush Sliding against Copper, Brass, Coin-Silver and Steel,” Wear, 326, pp 48–57.
  • Bhushan, B. (1998), “Contact Mechanics of Rough Surfaces in Tribology: Multiple Asperity Contact,” Tribology Letters, 4(1), pp 1–35.
  • Slade, P. G. (1999), Electrical Contacts, Principles and Applications, CRC Press: New York.
  • Kuhlmann-Wilsdorf, D. and Alley, D. M. (1989), “Commutation with Metal Fiber Brushes,” IEEE Transactions on Components Hybrids & Manufacturing Technology, 12(2), pp 246–253.
  • Kuhlmann-Wilsdorf, D. (1996), “Electrical Fiber Brushes—Theory and Observations,” IEEE Transactions on Components Packaging & Manufacturing Technology: Part A, 19(3), pp 360–375.
  • Kuhlmann-Wilsdorf, D. (1983), “Gold Fibre Brushes,” Gold Bulletin, 16(1), pp 12–20.
  • Brown, L., Kuhlmann-Wilsdorf, D., and Jesser, W. (2008), “Testing and Evaluation of Metal Fiber Brush Operation on Slip Rings and Commutators,” IEEE Transactions on Components and Packaging Technologies, 31(2), pp 485–494.
  • Argibay, N. (2009), Tribology of Self-Mated Copper Fiber Brush-on-Rotor Sliding Electrical Contacts in a Humid Carbon Dioxide Environment, University of Florida.
  • Argibay, N., Bares, J. A., and Sawyer, W. G. (2010), “Asymmetric Wear Behavior of Self-Mated Copper Fiber Brush and Slip-Ring Sliding Electrical Contacts in a Humid Carbon Dioxide Environment,” Wear, 268(3–4), pp 455–463.
  • Argibay, N., Bares, J. A., Keith, J. H., Bourne, G. R., and Sawyer, W. G. (2010), “Copper–Beryllium Metal Fiber Brushes in High Current Density Sliding Electrical Contacts,” Wear, 268(11–12), pp 1230–1236.
  • Reck, B., Lehmann, P., Spahn, E., Wenning, W., and Vo, M. D. (2009), “A Model for Predicting Transition in Railgun Fiber Brush Armatures,” IEEE Transactions on Magnetics, 1(45), pp 620–625.
  • Xiao, J. K., Liu, L. M., Zhang, C., Zhang, L., and Zhou, K. C. (2016), “Sliding Electrical Contact Behavior of Brass Fiber brush Sliding against Coin-Silver and Au Plating,” Wear, 368, pp 461–469.
  • Roschning, B. and Huber, N. (2016), “Scaling Laws of Nanoporous Gold under Uniaxial Compression: Effects of Structural Disorder on the Solid Fraction, Elastic Poisson's Ratio, Young’s Modulus and Yield Strength,” Journal of the Mechanics & Physics of Solids, 92, pp 55–71.
  • Jia, Z. N., Hao, C. Z., Yan, Y. H., and Yang, Y. L. (2015), “Effects of Nanoscale Expanded Graphite on the wear and Frictional Behaviors of Polyimide-Based Composites,” Wear, 338, pp 282–287.
  • Hu, Z. L., Chen, Z. H., Xia, J. T., and Ding, G. Y. (2008), “Effect of PV Factor on the Wear of Carbon Brushes for Micromotors,” Wear, 265(3–4), pp 336–340.
  • Li, J. F., Zhang, L., Xiao, J. K., and Zhou, K. C. (2015), “Sliding Wear Behavior of Copper-Based Composites Reinforced with Graphene Nanosheets and Graphite,” Transactions of Nonferrous Metals Society of China, 25(10), pp 3354–3362.
  • Ma, W., Lu, J., and Wang, B. (2009), “Sliding Friction and Wear of Cu–Graphite against 2024. AZ91D and Ti6Al4V at Different Speeds,” Wear, 266(11–12), pp 1072–1081.
  • Braunovic, M., Myshkin, N. K., and Konchits, V. V. (2006), Electrical Contacts: Fundamentals, Applications and Technology, CRC Press.
  • Luo, B., Jing, G. R., Li, C. J., and Zhang, L. (2018), “Effects of Expanded Graphite on the Current Carrying Tribological Properties of Phosphor–Bronze Fiber Brush,” Materials Science and Engineering of Powder Metallurgy, 113(2), pp 32–41.
  • Tarasov, S. Y., Lychagin, D. V., and Chumaevskii, A. V. (2013), “Orientation Dependence of Subsurface Deformation in Dry Sliding Wear of Cu Single Crystals,” Applied Surface Science, 274, pp 22–26.
  • Wang, Y., Zhang, L., Wang, T., Hui, X. D., Chen, W., and Feng, C. F. (2015), “Effect of Sliding Velocity on the Transition of Wear Mechanism in (Zr, Cu)95Al5 Bulk Metallic Glass,” Tribology International, 101, pp 141–151.
  • Kestursatya, M., Kim, J. K., and Rohatgi, P. K. (2003), “Wear Performance of Copper–Graphite Composite and a Leaded Copper Alloy,” Materials Science & Engineering A, 339(1–2), pp 150–158.
  • Moshkovich, A., Lapsker, I., Laikhtman, A., Perfilyev, V., and Rapoport, L. (2013), “The Failure and Damage Mechanisms under Friction of Copper in the EHL and Mixed EHL Regions,” Tribology Letters, 51(1), pp 57–64.
  • Seo, J. W., Jun, H. K., Kwon, S. J., and Lee, D. H. (2016), “Rolling Contact Fatigue and Wear of Two Different Rail Steels under Rolling–Sliding Contact,” International Journal of Fatigue, 83, pp 184–194.
  • Berman, D., Erdemir, A., and Sumant, A. V. (2012), “Few Layer Graphene to Reduce Wear and Friction on Sliding Steel Surfaces,” Carbon, 54, pp 454–459.
  • Berman, D., Erdemir, A., and Sumant, A. V. (2013), “Reduced Wear and Friction Enabled by Graphene Layers on Sliding Steel Surfaces in Dry Nitrogen,” Carbon, 59, pp 167–175.
  • Barros’Bouchet, M. I. D., Martin, J. M., Le-Mogne, T., and Vacher, B. (2005), “Boundary Lubrication Mechanisms of Carbon Coatings by MoDTC and ZDDP Additives,” Tribology International, 38(3), pp 257–264.
  • Rabaso, P., Ville, F., Dassenoy, F., Diaby, M., Afanasiev, P., Cavoret, J., Vacher, B., and Le Mogne, T. (2014), “Boundary Lubrication: Influence of the Size and Structure of Inorganic Fullerene-Like MoS2 Nanoparticles on Friction and Wear Reduction,” Wear, 320, pp 161–178.

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.