Ultralow Wear PTFE and Alumina Composites: It is All About Tribochemistry

被引:0
作者
Angela A. Pitenis
Kathryn L. Harris
Christopher P. Junk
Gregory S. Blackman
W. Gregory Sawyer
Brandon A. Krick
机构
[1] University of Florida,Department of Mechanical and Aerospace Engineering
[2] University of Florida,Department of Materials Science and Engineering
[3] DuPont Central Research and Development,Department of Mechanical Engineering and Mechanics
[4] Lehigh University,undefined
关键词
Polytetrafluoroethylene; Alumina; Tribochemistry; Wear; Tribofilms; Carboxylic acid;
D O I
暂无
中图分类号
学科分类号
摘要
Over the last decade, researchers have explored an intriguing polymer composite composed of granular polytetrafluoroethylene (PTFE) 7C and alumina particles. This material is extraordinary because a very small amount of alumina additive (<5 wt%) decreased the wear rate of the PTFE composite by over four orders of magnitude. Previous studies have shown that this wear resistance was initiated and maintained by the formation of a stable, robust, and uniform polymeric transfer film on the surface of the countersample. Although its importance to this tribological system is clear, the transfer film itself has not been well understood. Careful spectroscopic analysis throughout the stages of transfer film development revealed that tribochemistry plays a major role in the significant wear rate reductions achieved in PTFE and alumina composites. Fourier transform infrared spectroscopy and X-ray photoelectron spectroscopy reveal that PTFE chains break due to the mechanical stresses at the wear surface and, in the presence of oxygen and water in the ambient environment, produce carboxylic acid end groups. These carboxylic acid end groups can chelate to the exposed metal on the steel surface and nucleate the formation of the transfer film. The resulting thin and robust fluoropolymer transfer film protects the surface of the steel and changes the sliding interface from polymer on steel to polymer on polymer transfer film. These effects keep friction coefficients and wear rates low and stable. Ultimately, the real mechanisms responsible for the exceptional wear performance of these materials are all about the tribochemistry.
引用
收藏
相关论文
共 101 条
  • [1] Burris DL(2006)Improved wear resistance in alumina-PTFE nanocomposites with irregular shaped nanoparticles Wear 260 915-918
  • [2] Sawyer WG(2007)Polymeric nanocomposites for tribological applications Macromol. Mater. Eng. 292 387-402
  • [3] Burris DL(2008)Effect of particle size on the wear resistance of alumina-filled PTFE micro- and nanocomposites Tribol. Trans. 51 247-253
  • [4] Boesl B(2009)A route to wear resistant PTFE via trace loadings of functionalized nanofillers Wear 267 653-660
  • [5] Bourne GR(2012)Sawyer, Environmental dependence of ultra-low wear behavior of polytetrafluoroethylene (PTFE) and alumina composites suggests tribochemical mechanisms Tribol. Int. 51 42-46
  • [6] Sawyer WG(2013)Transfer film evolution and its role in promoting ultra-low wear of a PTFE nanocomposite Wear 297 1095-1102
  • [7] Mcelwain SE(2014)In vacuo tribological behavior of polytetrafluoroethylene (PTFE) and alumina nanocomposites: the importance of water for ultralow wear Tribol. Lett. 53 189-197
  • [8] Blanchet TA(2014)Mechanistic studies in friction and wear of bulk materials Annu. Rev. Mater. Res. 44 395-427
  • [9] Schadler LS(2014)Quantitative characterization of solid lubricant transfer film quality Wear 316 133-143
  • [10] Sawyer WG(2010)Coupled effect of filler content and countersurface roughness on PTFE nanocomposite wear resistance Tribol. Lett. 40 11-21