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Original Articles

Tribological Behaviors of Molybdic Acid–Modified Phenolic/Polyfluo Wax Composite Coating

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Pages 428-434 | Received 16 Oct 2014, Accepted 21 Jul 2015, Published online: 21 Apr 2016

References

  • Vishwanath, B., Verma, A. P., and Kameswara, C. V. S. (1992), “Effect of Matrix Content on Strength and Wear of Woven Roving Glass Polymeric Composites,” Composites Science and Technology, 44, pp 77–96.
  • Reghunadhan Nair, C. P., Bindu, R. L., and Ninan, K. N. (2002), “Addition Curable Phenolic Resins Based on Ethynyl Phenyl Azo Functional Novolac,” Polymer, 43, pp 2609–2617.
  • Wang, H. G., Lu, R. G., and Huang, T. (2011), “Effect of Grafted Polytetrafluoroethylene Nanoparticles on the Mechanical and Tribological Performances of Phenol Resin,” Materials Science and Engineering A, 528, pp 6878–6886.
  • Wang, Y., Cheng, B., and Jiang, X. L. (2013), “Adhesion Improvement of Electroless Copper Plating on Phenolic Resin Matrix Composite through a Tin-Free Sensitization Process,” Applied Surface Science, 271, pp 303–310.
  • Liu, N., Wang, J. Z., and Chen, B. B. (2014), “Enhancement on Interlaminar Shear Strength and Tribological Properties in Water of Ultra High Molecular Weight Polyethylene/Glass Fabric/Phenolic Laminate Composite by Surface Modification of Fillers,” Materials & Design, 55, pp 805–811.
  • Su, F. H., Zhang, Z. Z., and Guo, F. (2007), “Friction and Wear Properties of Fabric/Phenolic with Plasma Treated Hybrid Glass/PTFE Fabric,” Composites Science and Technology, 67, pp 981–988.
  • Ren, G. N., Zhang, Z. Z., Zhu, X. T., Men, X. H., Jiang, W., and Liu, W. M. (2014), “Tribological Behaviors of Hybrid PTFE/Nomex Fabric/Phenolic Composite under Dry and Water-Bathed Sliding Conditions,” Tribology Transactions, 57, pp 1116–1121.
  • Rivero, G., Fasce, L. A., and Ceré, S. M. (2014), “Furan Resins as Replacement of Phenolic Protective Coatings: Structural, Mechanical and Functional Characterization,” Progress in Organic Coatings, 77, pp 247–256.
  • Abdalla, M. O., Ludwick, A., and Mitchell, T. (2003), “Boron-Modified Phenolic Resins for High Performance Applications,” Polymer, 44, pp 7353–7359.
  • Si, J. J., Li, J., and Wang, S. J. (2013), “Enhanced Thermal Resistance of Phenolic Resin Composites at Low Loading of Graphene Oxide,” Composites Part A, 54, pp 166–172.
  • Wang, J., Jiang, H., and Jiang, N. (2009), “Study on the Pyrolysis of Phenol-Formaldehyde PF Resin and Modified PF Resin,” Thermochimica Acta, 496, pp 136–142.
  • Imamura, R., Matsui, K., and Takeda, S. (1999), “A New Role for Phosphorus in Graphitization of Phenolic Resin,” Carbon, 37, pp 261–267.
  • Liu, L. and Ye, Z. P. (2009), “Effects of Modified Multi-Walled Carbon Nanotubes on the Curing Behavior and Thermal Stability of Boron Phenolic Resin,” Polymer Degradation and Stability, 94, pp 1972–1978.
  • Liu, C. Q., Li, K. Z., and Li, H. J. (2014), “The Effect of Zirconium Incorporation on the Thermal Stability and Carbonized Product of Phenol-Formaldehyde Resin,” Polymer Degradation and Stability, 102, pp 1–6.
  • Liu, Y. F., Gao, J. G., and Zhang, R. Z. (2002) “Thermal Properties and Stability of Boron-Containing Phenol-Formaldehyde Resin Formed from Paraformaldehyde,” Polymer Degradation and Stability, 77, pp 495–501.
  • Gao, J. G., Liu, Y. F., and Wang, F. L. (2001), “Structure and Properties of Boron-Containing Bisphenol-A Formaldehyde Resin,” European Polymer Journal, 37, pp 207–210.
  • Ouyang, Z., Wu, L., and Yi, D. (2005), “Study on Mo-PF Used as Bonding Agent,” Chemical Industry and Engineering Progress, 24(8), pp 901–904.
  • Zhang, Y., Shen, S. H., and Liu, Y. J. (2013), “The Effect of Titanium Incorporation on the Thermal Stability of Phenol-Formaldehyde Resin and Its Carbonization Microstructure,” Polymer Degradation and Stability, 98, pp 514–518.
  • Wang, J. G., Jiang, N., and Guo, Q. G. (2006), “Study on the Structural Evolution of Modified Phenol–Formaldehyde Resin Adhesive for the High-Temperature Bonding of Graphite,” Journal of Nuclear Materials, 348, pp 108–113.
  • Lin, C. T., Lee, H. T., and Chen, J. K. (2013), “Synthesis and Characterization of Molybdenum/Phenolic Resin Composites Binding with Aluminum Nitride Particles for Diamond Cutters,” Applied Surface Science, 284, pp 297–307.
  • Zhang, M. Q., Rong, M. Z., and Yu, S. L. (2002), “Effect of Particle Surface Treatment on the Tribological Performance of Epoxy Based Nano-Composites,” Wear, 253, pp 1086–1093.
  • Zhang, H. J., Zhang, Z. Z., and Guo, F. (2012), “Effects of Air Plasma Treatment on Tribological Properties of Hybrid PTFE/Kevlar Fabric Composite,” Journal of Applied Polymer Science, 124, pp 235–241.
  • Song, H., Zhang, Z. Z., Men. X. H., and Luo, Z. Z. (2010), “A Study of the Tribological Behavior of Nano-ZnO-Filled Polyurethane Composite Coatings,” Wear, 269, pp 9–85.
  • Song, H. J., Zhang, Z. Z., and Men, X. H. (2007), “Surface-Modified Carbon Nanotubes and the Effect of their Addition on the Tribological Behavior of a Polyurethane Coating,” European Polymer Journal, 43, pp 3226–3236.
  • Basavarajappa, S. and Ellangovan, S. (2012), “Dry Sliding Wear Characteristics of Glass–Epoxy Composite Filled with Silicon Carbide and Graphite Particles,” Wear, 296, pp 491–496.
  • Bonfield, W., Edwards, B. C., and Markham, A J. (1976), “Wear Transfer Films Formed by Carbon Fibre Reinforced Epoxy Resin Sliding on Stainless Steel,” Wear, 37, pp 113–121.
  • Zhang, D. Y., Zhang, P. B., Lin, P., Dong, G. N., and Zeng, Q. F. (2013), “Tribological Properties of Self-Lubricating Polymer–Steel Laminated Composites,” Tribology Transactions, 56, pp 908–918.
  • Krick, B. A., Ewin, J. J., and Mccumiskey, E. J. (2014), “Tribofilm Formation and Run-In Behavior in Ultra-Low-Wearing Polytetrafluoroethylene (PTFE) and Alumina Nanocomposites,” Tribology Transactions, 57, pp 1058–1065.

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