532
Views
22
CrossRef citations to date
0
Altmetric
Original Articles

Enhancing the Tribological Behavior of Lubricating Oil by Adding TiO2, Graphene, and TiO2/Graphene Nanoparticles

ORCID Icon, , , &
Pages 452-463 | Received 11 Sep 2017, Accepted 18 Jan 2019, Published online: 15 Apr 2019

References

  • Guevremont, J. M., Guinther, G. H., Szemenyei, D., Devlin, M. T., and Jao, T.-C. (2008), “Enhancement of Engine Oil Wear and Friction Control Performance through Titanium Additive Chemistry,” Tribology Transactions, 51, pp 324–331.
  • Padgurskas, J., Rukuiza, R., Prosyčevas, I., and Kreivaitis, R. (2013), “Tribological Properties of Lubricant Additives of Fe, Cu and Co Nanoparticles,” Tribology International, 60, pp 224–232.
  • Ji, X., Chen, Y., Zhao, G., Wang, X., and Liu, W. (2011), “Tribological Properties of CaCO3 Nanoparticles as an Additive in Lithium Grease,” Tribology Letters, 41, pp 113–119.
  • Düzcükoğlua, H., Ekinci, Ş., Şahinb, Ö. S., Avcıc, A., Ekremc M., and Ünaldıa, M. (2015), “Enhancement of Wear and Friction Characteristics of Epoxy Resin by Multiwall Carbon Nano Tube and Boron Nitride Nano Particles,” Tribology Transactions, 58(4), pp 635–642.
  • Xia, W., Zhao, J., Wu, H., Zhao, X., Zhang, X., Xu, J., Hee, A. C., and Jiang, Z. (2017), “Effects of Nano-TiO2 Additive in Oil-in-Water Lubricant on Contact Angle and Antiscratch Behavior,” Tribology Transactions, 60(2), pp 362–372.
  • Lee, K., Hwang, Y.-J., Cheong, S., Choi, Y., Kwon, L., Lee, J., and Kim, S. H. (2009), “Understanding the Role of Nanoparticles in Nano-Oil Lubrication,” Tribology Letters, 35, pp 127–131.
  • Sui, T., Song, B., Wen, Y.-h., and Zhang, F. (2016), “Bifunctional Hairy Silica Nanoparticles as High-Performance Additives for Lubricant,” Scientific Reports, 6(22696).
  • Bahari, A., Lewis, R., and Slatter, T. (2017), “Friction and Wear Phenomena of Vegetable Oil–Based Lubricants with Additives at Severe Sliding Wear Conditions,” Tribology Transactions, 61(2), pp 207–219.
  • Berman, D., Erdemir, A., and Sumant, A. V. (2014), “Graphene: A New Emerging Lubricant,” Materials Today, 17(1), pp 31–42.
  • Quan, X., Hu, M., Gao, X., Fu, Y., Weng, L., Wang, D., Jiang, D., and Sun, J. (2016), “Friction and Wear Performance of Dual Lubrication Systems Combining WS2-MoS2 Composite Film and Low Volatility Oils under Vacuum Condition,” Tribology International, 99, pp 57–66.
  • Vijayaraj, M., Hait, S. K., Harinarain, A. K., and Ramakumar, S. S. V. (2016), “Tribochemical Transformation of Nano TiO2 to Ilmenite on the Surface of Wearing Steel Parts: Antiwear Action of Nano TiO2 as an Additive in Engine Oil,” Tribology Transactions, 59(3), pp 435–440.
  • Macwan, D. P., Dave, P. N., and Chaturvedi, S. (2011), “A Review on Nano-TiO2 Sol-Gel Type Syntheses and Its Applications,” Journal of Materials Science, 46, pp 3669–3686.
  • Bogunovic, L., Zuenkeler, S., Toensing, K., and Anselmetti, D. (2015), “An Oil-Based Lubrication System Based on Nanoparticular TiO2 with Superior Friction and Wear Properties,” Tribology Letters, 29(2), p 59.
  • Jia, Z., Xia, Y.-q., Shao, X., and Du, S.-m. (2014), “Synthesis, Characterization and Tribological Behavior of Oleic Acid–Capped Core–Shell Lanthanum Borate–SiO2 Composites,” Industrial Lubrication and Tribology, 66(1), pp 1–8.
  • Chen, T., Xia, Y., Jia, Z., Liu, Z., and Zhang, H. (2014), “Synthesis, Characterization, and Tribological Behavior of Oleic Acid Capped Graphene Oxide,” Journal of Nanomaterials, 2, pp 1–8.
  • Alves, S. M., Barros, B. S., Trajano, M. F., Ribeiro, K. S. B., and Moura, E. (2013), “Tribological Behavior of Vegetable Oil–Based Lubricants with Nanoparticles of Oxides in Boundary Lubrication Conditions,” Tribology International, 65, pp 28–36.
  • Hernandez Battez, A., Fernandez Rico, J. E., Navas Arias, A., Viesca Rodriguez, J. L., Chou Rodriguez, R., and Diaz Fernandez, J. M. (2006), “The Tribological Behaviour of ZnO Nanoparticles as an Additive to PAO6,” Wear, 261(3–4), pp 256–263.
  • Wu, H., Qin, L., Dong, G., Hua, M., Yang, S., and Zhang, J. (2017), “An Investigation on the Lubrication Mechanism of MoS2 Nano Sheet in Point Contact: The Manner of Particle Entering the Contact Area,” Tribology International, 107, pp 48–55.
  • Sundus, F., Masjuki, H. H., and Fazal, M. A. (2017), “Analysis of Tribological Properties of Palm Biodiesel and Oxidized Biodiesel Blends,” Tribology Transactions, 60(3), pp 530–536.
  • Azman, S. S. N., Zulkifli, N. W. M., Masjuki, H., Gulzar M., and Zahid, R. (2016), “Study of Tribological Properties of Lubricating Oil Blend Added with Graphene Nanoplatelets,” Journal of Materials Research, 31(13), pp 1932–1938.
  • Ingole, S., Charanpahari, A., Kakade, A., Umare, S. S., Bhatt, D. V., Menghani, J. (2013), “Tribological Behavior of Nano TiO2 as an Additive in Base Oil,” Wear, 301(1–2), pp 776–785.
  • Urchegui, M. A., Tato, W., and Gómez, X. (2008), “Wear Evolution in a Stranded Rope Subjected to Cyclic Bending,” Journal of Materials Engineering and Performance, 17(4), pp 550–560.
  • Peng, Y., Hu, Y., and Wang, H. (2007), “Tribological Behaviors of Surfactant-Functionalized Carbon Nanotubes as Lubricant Additive in Water,” Tribology Letters, 25(3), pp 247–253.
  • Zulkifli, N. W. M., Kalam, M. A., Masjuki, H. H., Al Mahmud, K. A. H., and Yunus, R. (2014), “The Effect of Temperature on Tribological Properties of Chemically Modified Bio-Based Lubricant,” Tribology Transactions, 57(3), pp 408–415.
  • Nowotyńska, I. and Kut, S. (2014), “Examining the Effect of the Die Angle on Tool Load and Wear in the Extrusion Process,” Journal of Materials Engineering and Performance, 23(4), pp 1307–1312.
  • Kumar, P. and Wani, M. F. (2018), “Tribological Characterisation of Graphene Oxide as Lubricant Additive on Hypereutectic Al-25Si/Steel Tribopair,” Tribology Transactions, 61(2), pp 335–346.
  • Myshkin, N. K., Petrokovets, M. I., and Kovalev, A. V. (2005), “Tribology of Polymers: Adhesion, Friction, Wear, and Mass-Transfer,” Tribology International, 38(11–12), pp 910–921.
  • Wu, J.-M., Lin, S.-J., Yeh, J.-W., Chen, S.-K., Huang, Y.-S., and Chen, H.-C. (2006), “Adhesive Wear Behavior of AlxCoCrCuFeNi High-Entropy Alloys as a Function of Aluminum Content,” Wear, 261(5–6), pp 513–519.
  • Jiménez, A. E. and Bermúdez, M. D. (2010), “Ionic Liquids as Lubricants of Titanium–Steel Contact. Part 2: Friction, Wear and Surface Interactions at High Temperature,” Tribology Letters, 37(2), pp 431–443.
  • Zhao, C., Chen, Y. K., Jiao, Y., Loya, A., and Ren, G. G. (2014), “The Preparation and Tribological Properties of Surface Modified Zinc Borate Ultrafine Powder as a Lubricant Additive in Liquid Paraffin,” Tribology International, 70, pp 155–164.
  • Zhao, C., Chen, Y. K., and Ren, G. (2013), “A Study of Tribological Properties of Water-Based Ceria Nanofluids,” Tribology Transactions, 56(2), pp 275–283.
  • Li, H., Xu, T., Wang, C., Chen, J., Zhou, H., and Liu, H. (2006), “Friction-Induced Physical and Chemical Interactions among Diamond-Like Carbon Film, Steel Ball and Water and/or Oxygen Molecules,” Diamond and Related Materials, 15(9), pp 1228–1234.
  • Gulzar, M., Masjuki, H. H., Varman, M., Kalam, M. A., Mufti, R. A., Zulkifli, N. W. M., Yunus, R., and Zahid, R. (2015), “Improving the AW/EP Ability of Chemically Modified Palm Oil by Adding CuO and MoS2 Nanoparticles,” Tribology International, 88, pp 271–279.
  • Posa, V. R., Annavaram, V., Koduru, J., Bobbala, R. P., Madhavi, V., and Somala, A. R. (2016), “Preparation of Graphene–TiO2 Nanocomposite and Photocatalytic Degradation of Rhodamine-B under Solar Light Irradiation,” Journal of Experimental Nanoscience, 11(9), pp 722–736.
  • Cho, D.-H., Jia, J., and Lee, Y.-Z. (2015), “Effects of Oxide Layer Formation during Lubricated Sliding on the Frictional Properties of Titanium-Coated Silicon,” Tribology Transactions, 58(1), pp 44–50.
  • Xu, Z., Zhang, Q., Shi, X., Zhai, W., and Yang, K. (2015), “Tribological Properties of TiAl Matrix Self-Lubricating Composites Containing Multilayer Graphene and Ti3SiC2 at High Temperatures,” Tribology Transactions, 58(6), pp 1131–1141.
  • Ali, M. K. A., Xianjun, H., Mai, L., Qingping, C., Turkson, R. F., Bicheng, C. (2016), “Improving the Tribological Characteristics of Piston Ring Assembly in Automotive Engines Using Al2O3 and TiO2 Nanomaterials as Nano-Lubricant Additives,” Tribology International, 103, pp 540–554.
  • Góral, A., Lityńska-Dobrzyńska, L., and Kot, M. (2017), “Effect of Surface Roughness and Structure Features on Tribological Properties of Electrodeposited Nanocrystalline Ni and Ni/Al2O3 Coatings,” Journal of Materials Engineering and Performance, 26(5), pp 2118–2128.
  • Krolczyk, G. M., Maruda, R. W., Krolczyk, J. B., Nieslony, P., Wojciechowski, S., and Legutko, S. (2018), “Parametric and Nonparametric Description of the Surface Topography in the Dry and MQCL Cutting Conditions,” Measurement, 121, pp 225–239.
  • Sedlaček, M., Gregorčič, P., and Podgornik, B. (2017), “Use of the Roughness Parameters Ssk and Sku to Control Friction—A Method for Designing Surface Texturing,” Tribology Transactions, 60(2), pp 260–266.

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.