Qi Yuan, Sun Bugong, Zhang Yang, Gao Gui, Zhang Peng, Zheng Xiaobao
Mechanical and Electronical Engineering College, Gansu Agricultural University, Lanzhou 730070, China.
State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, China.
Polymers (Basel). 2023 Sep 1;15(17):3626. doi: 10.3390/polym15173626.
The materials tribology community has identified that the transfer film attached to the surface of the counterpart metal during the friction process is not only closely related to the filler modification material but also a key factor affecting the tribological properties of polymer composites; however, there is a lack of feasible methods to quantify the characteristics of the transfer film. In this study, Nano-ZrO and polyetheretherketone (PEEK) were filled into a PTFE matrix in order to enhance the wear resistance of polytetrafluoroethylene (PTFE). The tribological properties of the modified PTFE composites were tested using a linear reciprocating friction and wear tester, and the entire friction experiment was designed in seven separate stages. Morphological features were extracted and analyzed from photographs of the transfer film acquired by optical microscopy at each friction stage using an image processing program. The thickness and roughness of the transfer film sections were measured using a non-contact profilometer. Abrasive debris were collected, and their morphological features were observed with an electron microscope. The results showed that the synergistic addition of soft PEEK and hard Nano-ZrO particles effectively inhibited interlayer slippage between PTFE molecular chains, dramatically reducing the size and yield of abrasive debris, and facilitated the improvement of the thickness and firmness of the transfer film, which significantly enhanced the wear resistance of the PTFE composites (the lowest volumetric wear rate for Nano-ZrO/PEEK/PTFE was only 1.76 × 10 mm/Nm). Quantitative analyses of the morphological characteristics of the transfer films revealed that the coverage and roundness of the transfer films gradually increase with the friction stroke, while the aspect ratio and texture entropy subsequently decrease gradually. The coverage, area, mean, third-order moments, and consistency of the transfer film strongly correlated with the volumetric wear rate (correlation coefficient |r| > 0.9).
材料摩擦学领域已经确定,在摩擦过程中附着在配对金属表面的转移膜不仅与填料改性材料密切相关,也是影响聚合物复合材料摩擦学性能的关键因素;然而,目前缺乏可行的方法来量化转移膜的特性。在本研究中,将纳米氧化锆(Nano-ZrO)和聚醚醚酮(PEEK)填充到聚四氟乙烯(PTFE)基体中,以提高聚四氟乙烯(PTFE)的耐磨性。使用线性往复摩擦磨损试验机测试改性PTFE复合材料的摩擦学性能,整个摩擦实验分为七个阶段进行设计。利用图像处理程序从每个摩擦阶段通过光学显微镜获取的转移膜照片中提取并分析形态特征。使用非接触式轮廓仪测量转移膜截面的厚度和粗糙度。收集磨屑,并用电子显微镜观察其形态特征。结果表明,软质PEEK和硬质纳米氧化锆颗粒的协同添加有效抑制了PTFE分子链间的层间滑移,显著减小了磨屑的尺寸和产量,并促进了转移膜厚度和牢固性的提高,从而显著增强了PTFE复合材料的耐磨性(纳米氧化锆/PEEK/PTFE的最低体积磨损率仅为1.76×10⁻⁶mm³/Nm)。对转移膜形态特征的定量分析表明,转移膜的覆盖率和圆度随摩擦行程逐渐增加,而长宽比和纹理熵随后逐渐减小。转移膜的覆盖率、面积、均值、三阶矩和一致性与体积磨损率密切相关(相关系数|r|>0.9)。