Corrosion and Wear Behavior of Impregnated Graphite under Ceramic Pairing

被引:0
作者
Song W. [1 ]
Li K. [1 ]
Ding X. [1 ]
Ma R. [1 ]
Chen H. [1 ]
机构
[1] College of Petrochemical Industry, Lanzhou University of Technology, Gansu, Lanzhou
来源
Mocaxue Xuebao/Tribology | 2024年 / 44卷 / 06期
关键词
electrochemical corrosion; friction and wear; impregnated graphite; transfer film; wear mechanism;
D O I
10.16078/j.tribology.2023114
中图分类号
学科分类号
摘要
The friction and corrosion characteristics of impregnated graphite in different media environments were studied by using scanning electron microscope and laser confocal microscope to respectively characterize the surface wear morphology, contact zone wear contour and wear volume. Analyzed the open circuit potential, polarization curve, electrochemical impedance map, and some key parameters related electrochemical impedance in deionized water and seawater, the friction and wear surface properties and mechanism of graphite impregnated paired with two kinds of ceramic dual balls were evaluated and analyzed. The results showed that the self-corrosion current density was lower, the capacitance arc was larger and phase angle was higher, the polarization resistance values were larger, when impregnated graphite was matched with ceramic ball Si3N4, and the impregnated graphite matched with ceramic ball Si3N4 exhibit a characteristic of better corrosion resistance and wear resistance. With the normal load increased, the open circuit potential showed a tendency to move in a negative direction, indicating that the corrosion resistance of graphite contact zone was enhanced. There was obvious furrow phenomenon on the surface of graphite in deionized water, and the wear mechanism was manifested as friction wear. The corrosion products and abrasive debris in the process of graphite wear and corrosion under seawater media formed a transfer film on the contact surface, and the contact surface morphology showed relatively smooth. During friction and corrosion process, the wear volume and dissipated energy in the friction process showed positively correlated with the increase of the normal load, while the wear rate showed negatively correlated with the increase of the normal load. The phenomenon of adhesion showed more obvious in seawater on the graphite contact surface, accompanied by abrasive wear and slight oxidation wear. The contact area in deionized water performed mainly abrasive wear, accompanied by slight adhesive wear and fatigue wear. © 2024 Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences. All rights reserved.
引用
收藏
页码:775 / 788
页数:13
相关论文
共 27 条
  • [1] Hokao M, Hironaka S, Suda Y, Et al., Friction and wear properties of graphite/glassy carbon composites[J], Wear, 237, 1, pp. 54-62, (2000)
  • [2] Xiao Yunpeng, Li Shuangxi, Li Qingzhan, Et al., Bench test study on matching performance of end face materials of dry friction mechanical seal, Lubrication Engineering, 45, 2, pp. 99-104, (2020)
  • [3] Wang Xinrong, Zhang Xia, Yang Lihua, Et al., Research on friction and wear properties of water-lubricated graphite thrust bearings and their mechanisms, Journal of Jiamusi University (Natural Science Edition), 35, 5, pp. 788-791, (2017)
  • [4] Hu Wenying, Zhang Shengguang, Li Wen, Prediction for wear behavior of graphite material in end face seal, Journal of Propulsion Technology, 43, 11, pp. 332-341, (2022)
  • [5] Li Binbin, Wang Wendong, Li Yang, Research progress in friction and wear properties of graphite and metals, Carbon, 1, pp. 30-34, (2023)
  • [6] Hu Yafei, Wang Lei, Hu Jianwen, Preparation and properties of antimony-impregnated graphite sealing ring material for medium-speed coal mill, Materials for Mechanical Engineering, 30, 6, pp. 55-57, (2006)
  • [7] He Min, Wang Qili, Sun Zhi, Research on friction and wear behaviour of graphite/antimony composites, Lubrication Engineering, 31, 9, pp. 155-156, (2006)
  • [8] Hu Yafei, Wang Qili, Liu Qi, Et al., Research on forming rule of lubricant film and friction-wearing of graphite composite materials, Journal of China University of Mining & Technology, 39, 2, pp. 223-226, (2010)
  • [9] Li Zhuan, Liu Yizhong, Bengu Zhang, Et al., Microstructure and tribological characteristics of needled C/C–SiC brake composites fabricated by simultaneous infiltration of molten Si and Cu[J], Tribology International, 93, pp. 220-228, (2016)
  • [10] Zhu Zhenguo, Wang Shuo, Ren Yong, Et al., Study on friction and wear properties of carbon graphite materials for mechanical seals, Carbon Techniques, 36, 6, pp. 34-37, (2017)