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第 5 期 陈广炎, 等: 石墨烯润滑添加剂合成与结构调控 767
development[J]. Friction, 2019, 7(2): 93–116. doi: 10.1007/s40544- [ 16 ] Flores-Castañeda M, Camps E, Camacho-López M, et al. Bismuth
019-0261-y. nanoparticles synthesized by laser ablation in lubricant oils for
[ 6 ] Guo Dan, Xie Guoxin, Luo Jianbin. Mechanical properties of tribological tests[J]. Journal of Alloys and Compounds, 2015, 643:
nanoparticles: basics and applications[J]. Journal of Physics S67–S70. doi: 10.1016/j.jallcom.2014.12.054.
D:Applied Physics, 2014, 47(1): 013001. doi: 10.1088/0022-3727/ [ 17 ] Gonzalez-Rodriguez P, van den Nieuwenhuijzen K J H, Lette W, et
47/1/013001. al. Tribochemistry of bismuth and bismuth salts for solid
[ 7 ] Qiao Yulin, Cui Qingsheng, Zang Yan, et al. Friction-reducing and lubrication[J]. ACS Applied Materials & Interfaces, 2016, 8(11):
antiwear behavior of graphene oil lubricating additives[J]. Journal 7601–7606. doi: 10.1021/acsami.6b02541.
of Academy of Armored Force Engineering, 2014, 28(6): 97–100 [ 18 ] Zhao Yanbao, Zhang Zhijun, Dang Hongxin. Fabrication and
(in Chinese) [乔玉林, 崔庆生, 臧艳, 等. 石墨烯油润滑添加剂的 tribological properties of Pb nanoparticles[J]. Journal of
减摩抗磨性能[J]. 装甲兵工程学院学报, 2014, 28(6): 97–100]. Nanoparticle Research, 2004, 6(1): 47–51. doi: 10.1023/B:NANO.
doi: 10.3969/j.issn.1672-1497.2014.06.019. 0000023223.79545.af.
[ 8 ] Li Rui, Lu Tianyang. The influence of carbon nanotubes and [ 19 ] Abad M D, Sánchez-López J C. Tribological properties of surface-
graphene as additives in lubricant oil on friction and wear[J]. China modified Pd nanoparticles for electrical contacts[J]. Wear, 2013,
Sciencepaper, 2015, 10(10): 1123–1126 (in Chinese) [李瑞, 陆天 297(1-2): 943–951. doi: 10.1016/j.wear.2012.11.009.
扬. 碳纳米管与石墨烯作为润滑油添加剂对界面摩擦磨损性能 [ 20 ] Hernández Battez A, Viesca J L, González R, et al. Friction
的影响[J]. 中国科技论文, 2015, 10(10): 1123–1126]. reduction properties of a CuO nanolubricant used as lubricant for a
[ 9 ] Xie Feng. Study on the lubricating property of carbon nano- NiCrBSi coating[J]. Wear, 2010, 268(1-2): 325–328. doi: 10.1016/
particles with four kinds of dimension[D]. Xuzhou: China j.wear.2009.08.018.
University of Mining and Technology, 2014 (in Chinese) [谢凤. 四 [ 21 ] Alves S M, Barros B S, Trajano M F, et al. Tribological behavior
种维度碳纳米微粒的润滑性能研究[D]. 徐州: 中国矿业大学, of vegetable oil-based lubricants with nanoparticles of oxides in
2014]. boundary lubrication conditions[J]. Tribology International, 2013,
[ 10 ] Zhou Jingfang, Wu Zhishen, Zhang Zhijun, et al. Tribological 65: 28–36. doi: 10.1016/j.triboint.2013.03.027.
behavior and lubricating mechanism of Cu nanoparticles in oil[J]. [ 22 ] Ghaednia H, Jackson R L, Khodadadi J M. Experimental analysis
Tribology Letters, 2000, 8(4): 213–218. doi: 10.1023/A:10191 of stable CuO nanoparticle enhanced lubricants[J]. Journal of
51721801. Experimental Nanoscience, 2015, 10(1): 1–18. doi: 10.1080/1745
[ 11 ] Yu H L, Xu Y, Shi P J, et al. Characterization and nano-mechanical 8080.2013.778424.
properties of tribofilms using Cu nanoparticles as additives[J]. [ 23 ] Peña-Parás L, Taha-Tijerina J, Garza L, et al. Effect of CuO and
Surface and Coatings Technology, 2008, 203(1-2): 28–34. doi: 10. Al 2 O 3 nanoparticle additives on the tribological behavior of fully
1016/j.surfcoat.2008.07.032. formulated oils[J]. Wear, 2015, 332-333: 1256–1261. doi: 10.1016/
[ 12 ] Zhang Yujuan, Xu Yaohua, Yang Yuangbin, et al. Synthesis and j.wear.2015.02.038.
tribological properties of oil-soluble copper nanoparticles as [ 24 ] Ilie F, Covaliu C. Tribological properties of the lubricant
environmentally friendly lubricating oil additives[J]. Industrial containing titanium dioxide nanoparticles as an additive[J].
Lubrication and Tribology, 2015, 67(3): 227–232. doi: 10.1108/ilt- Lubricants, 2016, 4(2): 12. doi: 10.3390/lubricants4020012.
10-2012-0098. [ 25 ] Xia Wenzhen, Zhao Jingwei, Cheng Xiawei, et al. Study on growth
[ 13 ] Borda F L G, de Oliveira S J R, Lazaro L M S M, et al. behaviour of oxide scale and its effects on tribological property of
Experimental investigation of the tribological behavior of nano-TiO 2 additive oil-in-water lubricant[J]. Wear, 2017, 376-377:
lubricants with additive containing copper nanoparticles[J]. 792–802. doi: 10.1016/j.wear.2017.01.069.
Tribology International, 2018, 117: 52–58. doi: 10.1016/j.triboint. [ 26 ] Zhang Ruochong, Qiao Dan, Liu Xuqing, et al. Well dispersive
2017.08.012. TiO 2 nanoparticles as additives for improving the tribological
[ 14 ] Padgurskas J, Rukuiza R, Prosyčevas I, et al. Tribological performance of polyalphaolefin gel lubricant[J]. Industrial &
properties of lubricant additives of Fe, Cu and Co nanoparticles[J]. Engineering Chemistry Research, 2018, 57(31): 10379–10390. doi:
Tribology International, 2013, 60: 224–232. doi: 10.1016/j.triboint. 10.1021/acs.iecr.8b01694.
2012.10.024. [ 27 ] Wu Hui, Zhao Jingwei, Cheng Xiawei, et al. Friction and wear
[ 15 ] Zhang Songwei, Hu Litian, Feng Dapeng, et al. Anti-wear and characteristics of TiO 2 nano-additive water-based lubricant on
friction-reduction mechanism of Sn and Fe nanoparticles as ferritic stainless steel[J]. Tribology International, 2018, 117: 24–38.
additives of multialkylated cyclopentanes under vacuum doi: 10.1016/j.triboint.2017.08.011.
condition[J]. Vacuum, 2013, 87: 75–80. doi: 10.1016/j.vacuum. [ 28 ] Xia Wenzhen, Zhao Jingwei, Wu Hui, et al. Analysis of oil-in-
2012.07.009. water based nanolubricants with varying mass fractions of oil and