Page 133 - 摩擦学学报2025年第4期
P. 133

第 4 期              周海滨, 等: MoS 2 镀层类型对湿式铜基摩擦材料高速重载下的摩擦学行为影响                                  621

                 on graphite surface on braking tribological behavior of copper-based  5168-5.
                 powder  metallurgical  friction  material[J].  Tribology,  2022,  42(2):  [22]   Shi  Sensen.  Solid  lubricating  material[M].  Beijing:  Chemical
                 396–407 (in Chinese) [张鑫, 郭丹, 刘军锋, 等. 石墨表面金属包覆    Industry Press, 2000, 324 (in Chinese) [石淼森. 固体润滑材料[M].
                 处理对Cu基粉末冶金摩擦材料制动摩擦学行为的影响[J]. 摩擦                   北京: 化学工业出版社, 2000, 324].
                 学学报, 2022, 42(2): 396–407]. doi: 10.16078/j.tribology.2021019.  [23]   Zhou  Haibin,  Yao  Pingping,  Xiao  Yelong,  et  al.  Influence  of
            [16]   Yan Shenlang, Zhang Zhaosen, Song Zhaoquan, et al. Properties of  ferrochromium  type  on  micro  and  macro  tribology  behavior  of
                 wet  copper-based  friction  materials  containing  carbon  fiber[J].  copper  metal  matrix  composites[J].  Tribology  International,  2023,
                 Materials  Science  and  Engineering  of  Powder  Metallurgy,  2010,
                                                                   184: 108409. doi: 10.1016/j.triboint.2023.108409.
                 15(2): 186–190 (in Chinese) [严深浪, 张兆森, 宋招权, 等. 含炭纤
                                                               [24]   Futami T, Ohira M, Muto H, et al. Contact/scratch-induced surface
                 维湿式铜基摩擦材料的性能[J]. 粉末冶金材料科学与工程, 2010,
                                                                   deformation   and   damage   of   copper–graphite   particulate
                 15(2): 186–190]. doi: 10.3969/j.issn.1673-0224.2010.02.017.
                                                                   composites[J].  Carbon,  2009,  47(11):  2742–2751.  doi:  10.1016/j.
            [17]   Xie Maoqing, Wang Leigang, Peng Peng, et al. Friction and wear
                                                                   carbon.2009.05.034.
                 properties  of  PM  Zn-W  alloy  reinforcing  copper-based  friction
                                                               [25]   Xiao Jinkun, Zhang Lei, Zhou Kechao, et al. Microscratch behavior
                 material  for  mining  truck  clutches[J].  Materials  Science  and
                                                                   of copper–graphite composites[J]. Tribology International, 2013, 57:
                 Engineering  of  Powder  Metallurgy,  2020,  25(5):  440–448  (in
                                                                   38–45. doi: 10.1016/j.triboint.2012.07.004.
                 Chinese) [谢茂青, 王雷刚, 彭鹏, 等. 矿用卡车离合器用锌钨合金
                                                               [26]   Zhou Haibin, Yao Pingping, Gong Taiming, et al. Effects of ZrO 2
                 增强铜基粉末冶金摩擦材料的摩擦磨损性能[J]. 粉末冶金材料科
                                                                   crystal structure on the tribological properties of copper metal matrix
                 学 与 工 程 ,  2020,  25(5):  440–448].  doi:  10.3969/j.issn.1673-0224.
                                                                   composites[J]. Tribology International, 2019, 138: 380–391. doi: 10.
                 2020.05.012.
                                                                   1016/j.triboint.2019.06.005.
            [18]   Chen  Shuxian.  The  study  of  preparation,  microstructure  and
                                                               [27]   Zhou Haijun, Dong Shaoming, He Ping, et al. Tribological behaviors
                 properties  of  Cu-MoS 2   composites[D].  Hefei:  Hefei  University  of
                                                                   and  anti-wear  mechanisms  of  carbon/carbon-silicon  carbide
                 Technology, 2009 (in Chinese) [陈淑娴. 铜—二硫化钼复合材料的
                                                                   composites[J].  Journal  of  Inorganic  Materials,  2013,  28(10):
                 制备及其组织与性能研究[D]. 合肥: 合肥工业大学, 2009].
                                                                   1057–1061 (in Chinese) [周海军, 董绍明, 何平, 等. 碳/碳碳化硅复
            [19]   Xiao Jinkun, Zhang Wei, Liu Liming, et al. Tribological behavior of
                                                                   合材料的摩擦磨损行为与机理[J]. 无机材料学报, 2013, 28(10):
                 copper-molybdenum disulfide composites[J]. Wear, 2017, 384–385:
                                                                   1057–1061]. doi: 10.3724/SP.J.1077.2013.12745.
                 61–71. doi:10.1016/j.wear.2017.05.006.
            [20]   Qiu Tianxu, Pan Shiyan, Fan Cang, et al. Effect of Ni-coated MoS 2  [28]   Xiao Yelong, Zhang Zhongyi, Yao Pingping, et al. Mechanical and
                 on  microstructure  and  tribological  properties  of  (Cu–10Sn)-based  tribological behaviors of copper metal matrix composites for brake
                 composites[J]. Transactions of Nonferrous Metals Society of China,  pads  used  in  high-speed  trains[J].  Tribology  International,  2018,
                 2020, 30(9): 2480–2490. doi: 10.1016/s1003-6326(20)65394-8.  119: 585–592. doi: 10.1016/j.triboint.2017.11.038.
            [21]   Wang  Huiling,  Jiang  Feng,  Tong  Mengmeng,  et  al.  Effects  of  [29]   Tan Huiqiang. Study of tribological properties and wear map for wet
                 copper-coated  MoS 2   on  friction  performance  of  bronze-graphite-  copper-based friction pair[D]. Changsha: Central South University,
                 MoS 2   self-lubricating  materials[J].  Journal  of  Central  South  2013 (in Chinese) [谭慧强. 铜基湿式摩擦副摩擦学性能及磨损图
                 University,  2022,  29(11):  3608–3619.  doi:  10.1007/s11771-022-  研究[D]. 长沙: 中南大学, 2013].
   128   129   130   131   132   133   134   135   136   137   138