欢迎登录材料期刊网

材料期刊网

高级检索

海洋是人类生存的基本空间,也是保证人类社会持续发展的宝库。关于海洋环境下材料的摩擦学研究,不仅促进了海洋工程装备的开发,而且也为海洋工程装备的关键摩擦副材料提供了有力支撑。但海洋环境下的摩擦磨损严重制约了海洋专用材料的应用与发展,主要原因是海水介质复杂,以及腐蚀与摩擦的交互作用等。因此,研究和探讨海洋环境下关键摩擦副材料的摩擦学是提高我国海洋工程装备整体水平的重要途径。对海洋环境下关键摩擦副材料的摩擦学研究进行汇总与分析,着重介绍了金属与金属配副、陶瓷与金属配副、聚合物与金属配副、聚合物与陶瓷配副等在海水环境下的摩擦学研究现状,并结合摩擦副材料的摩擦学研究现状及发展趋势,对海洋环境下关键摩擦副材料的摩擦学研究进行了展望。

As a basic space for human existence,the ocean ensures the sustainable development of human socie-ty.Tribological study of the materials under seawater not only accelerate the development of ocean engineering equip-ment,but also provide a surport for key friction pairs materials in ocean engineering equipment.However,the appli-cation and development of ocean proprietary material are limited seriously,because of the complexity of seawater and the interaction of corrosion and friction.The study of the tribological characteristics of seawater material plays impor-tant role in the development of marine engineering equipment,and it also has a critical significance to improve the overall level of Chinese marine engineering equipment.This paper summarizes and analyzes the current tribological studies of the key friction material,and emphatically introduces the research status of the different tribological couples including metal and metal,ceramic and metal,polymer and metal,polymer and ceramic.Finally,the development trend of the tribological field is discussed;the future progress of the key friction material in the seawater is also prospected.

参考文献

[1] 徐丽萍;毛杰;张吉阜;邓畅光;刘敏;周克崧.表面工程技术在海洋工程装备中的应用[J].中国材料进展,2014(1):1-8.
[2] Jianzhang Wang;Jun Chen;Beibei Chen;Fengyuan Yan;Qunji Xue.Wear behaviors and wear mechanisms of several alloys under simulated deep-sea environment covering seawater hydrostatic pressure[J].Tribology International,2012:38-46.
[3] Zhang, Yue;Yin, Xiangyu;Yan, Fengyuan.Effect of halide concentration on tribocorrosion behaviour of 304SS in artificial seawater[J].Corrosion Science: The Journal on Environmental Degradation of Materials and its Control,2015Oct.(Oct.):272-280.
[4] Gongjun Cui;Qinling Bi;Shengyu Zhu;Jun Yang;Weimin Liu.Tribological behavior of Cu-6Sn-6Zn-3Pb under sea water, distilled water and dry-sliding conditions[J].Tribology International,2012:126-134.
[5] 陈君;李全安;张清;付三玲;陈晓亚.海水腐蚀对几种金属材料耐磨性能的影响[J].材料热处理学报,2014(12):166-171.
[6] 吴海荣;毕秦岭;杨军;刘维民.巴氏合金ZChSnSb8-8海水环境下的摩擦学行为研究[J].摩擦学学报,2011(3):271-277.
[7] 董从林;白秀琴;严新平;袁成清.海洋环境下的材料摩擦学研究进展与展望[J].摩擦学学报,2013(3):311-320.
[8] 丁红燕;戴振东.TC11钛合金在人造海水中的腐蚀磨损特性研究[J].摩擦学学报,2008(2):139-144.
[9] 李新星;李奕贤;王树奇.TC4合金在不同环境介质中的磨损行为及磨损机制研究[J].稀有金属,2015(9):793-798.
[10] Shengyu Zhu;Qinling Bi;Jun Yang;Zhuhui Qiao;Jiqiang Ma;Fei Li;Bing Yin;Weimin Liu.Tribological behavior of Ni_3Al alloy at dry friction and under sea water environment[J].Tribology International,2014:24-30.
[11] 陈君;阎逢元;王建章.海水环境下TC4钛合金腐蚀磨损性能的研究[J].摩擦学学报,2012(1):1-6.
[12] 黎清宁;蒋业华;卢德宏;周荣.湿磨工况下冲击功对高锰钢腐蚀磨损交互作用的影响[J].摩擦学学报,2009(1):75-80.
[13] Gongjun Cui;Qinling Bi;Muye Niu;Jun Yang;Weimin Liu.The tribological properties of bronze-SiC-graphite composites under sea water condition[J].Tribology International,2013:25-35.
[14] 任书芳;孟军虎;吕晋军;杨生荣.Ti3SiC2、不锈钢和NiCr合金在人工海水中的摩擦学性能[J].摩擦学学报,2013(4):363-371.
[15] Ning Liu;Jianzhang Wang;Beibei Chen;Fengyuan Yan.Tribochemical aspects of silicon nitride ceramic sliding against stainless steel under the lubrication of seawater[J].Tribology International,2013:205-213.
[16] Ming Chen;Koji Kato;Koshi Adachi.The difference in running-in period and friction coefficient between self-mated Si{sub}3N{sub}4 and SiC under water lubrication[J].Tribology letters,20011(1):23-28.
[17] 王建章;阎逢元;薛群基.几种聚合物材料在海水中的摩擦学行为[J].科学通报,2009(22):3558-3564.
[18] Shuhai Liu;Jianbin Luo;Gang Li;Chenhui Zhang;Xinchun Lu.Effect of surface physicochemical properties on the lubricating properties of water film[J].Applied Surface Science: A Journal Devoted to the Properties of Interfaces in Relation to the Synthesis and Behaviour of Materials,200822(22):7137-7142.
[19] Xiong DS;Gao Z;Jin ZM.Friction and wear properties of UHMWPE against ion implanted titanium alloy[J].Surface & Coatings Technology,200715(15):6847-6850.
[20] 孙文丽;王优强;时高伟.海水润滑赛龙陶瓷轴承的摩擦学性能研究[J].润滑与密封,2010(4):65-67.
[21] 孙文丽;王优强;时高伟.海水润滑赛龙材料磨损机制分析[J].润滑与密封,2011(7):48-51.
[22] 廖明义;辛波;励琦彪;金美花.水润滑橡胶轴承的制备及摩擦磨损性能研究[J].润滑与密封,2014(2):18-21.
[23] 廖明义;励琦彪.水润滑橡胶轴承用氯磺化聚乙烯的耐介质性及摩擦磨损性能[J].高分子材料科学与工程,2015(6):66-71.
[24] 段海涛;吴伊敏;王学美;王鼎;涂杰松;李健.新型水润滑轴承材料的摩擦学性能研究[J].武汉理工大学学报,2012(6):17-21.
[25] 王家序;陈战;秦大同.水润滑塑料轴承的摩擦性能研究[J].机械工程材料,2002(11):36-38.
[26] 王优强;李鸿琦.水润滑赛龙轴承及其润滑性能综述[J].润滑与密封,2003(1):101-104.
[27] M. Sumer;H. Unal;A. Mimaroglu.Evaluation of tribological behaviour of PEEK and glass fibre reinforced PEEK composite under dry sliding and water lubricated conditions[J].Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear,20087/8(7/8):1061-1065.
[28] Beibei Chen;Jianzhang Wang;Fengyuan Yan.Comparative investigation on the tribological behaviors of CF/PEEK composites under sea water lubrication[J].Tribology International,2012:170-177.
[29] 廖伍举;聂松林;李雷;张振华;袁劭华.PEEK450-FC30与SiC陶瓷在海水润滑下的摩擦磨损特性研究[J].液压与气动,2015(8):16-19.
[30] F. Zhou;K. Kato;K. Adachi.Friction and wear properties of CN{sub}x/SiC in water lubrication[J].Tribology letters,20052(2):153-163.
[31] 张明星;曹磊;王艳艳;万勇.45 钢表面化学镀 Ni-B 涂层的耐蚀性及摩擦学性能[J].中国表面工程,2015(3):63-69.
[32] 刘栓;姜欣;赵海超;顾林;王永欣;李金龙;余海斌;陈建敏.石墨烯环氧涂层的耐磨耐蚀性能研究[J].摩擦学学报,2015(5):598-605.
[33] 陈颢;伍方;赵文杰;曾志翔;乌学东;薛群基.海水环境中环氧值对环氧树脂涂层摩擦学性能的影响研究[J].摩擦学学报,2014(6):601-607.
[34] 王建章;陈贝贝;阎逢元.海水组分对海水润滑性能的影响[J].润滑与密封,2011(11):1-5.
[35] Jianzhang Wang;Fengyuan Yan;Qunji Xue.Friction and Wear Behavior of Ultra-High Molecular Weight Polyethylene Sliding Against GCr15 Steel and Electroless Ni-P Alloy Coating Under the Lubrication of Seawater[J].Tribology letters,20092(2):85-95.
[36] Jianzhang Wang;Fengyuan Yan;Qunji Xue.Tribological behavior of PTFE sliding against steel in sea water[J].Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear,20099/10(9/10):1634-1641.
[37] Nikita Zaveri;Manas Mahapatra;Andrew Deceuster;Yun Peng;Leijun Li;Anhong Zhou.Corrosion resistance of pulsed laser-treated Ti-6Al-4V implant in simulated biofluids[J].Electrochimica Acta,200815(15):5022-5032.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%