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不同对磨材料对AlCrN涂层摩擦磨损性能影响 被引量:6

Effects of Different Friction Materials on Friction and Wear Behavior of AlCrN Coating
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摘要 在YT15硬质合金表面采用PVD技术制备Al Cr N涂层,并在UMT-2摩擦磨损试验机上分别与不同材料的对磨球(WC-Co、GCr15、Q235、304)进行摩擦磨损对比试验。在不同载荷和滑动速度条件下研究了不同对磨材料对涂层表面摩擦磨损性能的影响。结果表明:涂层与304球对磨的摩擦系数最小,与WC-Co球的次之,与Q235球的最大;涂层与WC-Co球对磨的磨损率最低,且磨损率随载荷和速度的增加而降低;涂层与Q235、304不锈钢球对磨时主要磨损形式为粘结磨损和氧化磨损,与GCr15球对磨以粘结、磨粒和氧化磨损为主,与WC-Co球对磨以磨粒磨损和氧化磨损为主。 AlCrN coating is deposited on the surface of carbide( TY15) by PVD technology. Friction and wear tests are performed to evaluate the effects of different friction balls,WC-Co,GCr15,Q235 and 304 balls that composed by different materials,against the AlCrN coating under different speeds and loads. The results show that the friction coefficient between the coating and the 304 ball is the lowest,followed by the WC-Co ball and the Q235 ball is the highest. The wear rate of the coating against the WC-Co ball is the lowest,and the wear rate decreases with the increase of the loads and speeds.The main wear types of coating against Q235 and 304 stainless steel balls are adhesive and oxidative wear,and against GCr15 ball are adhesive,abrasive and oxidative wear,and against WC-Co balls are abrasive and oxidative wear.
作者 鲁洋 邓建新 宋文龙 张贵梁 张翔 Lu Yang;Deng Jianxin;Song Wenlong;Zhang Guiliang;Zhang Xiang
机构地区 山东大学 济宁学院
出处 《工具技术》 2018年第8期12-15,共4页 Tool Engineering
基金 山东省重点研发计划(2017GGX203007)
关键词 硬质合金 AlCrN涂层 对磨材料 摩擦磨损 carbide tool AlCrN coating friction materials friction and wear
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  • 1莫继良 朱曼吴 安剑 等.物理气相沉积CrN涂层的研究进展.中国表面工程,2006,19(4):71-75.
  • 2Reitera A E, Derflingera V H, Hanselmanna B, et al. Investigation of the properties of Al1-xCrxN coatings prepared by cathodic arc evaporation [J]. Surface and Coatings Technology, 2005, 200(7): 2114-2122.
  • 3Fox-Rabinovich G S, Beake B D, Endrino J L, et al. Effect of mechanical properties measured at room and elevated temperatures on the wear resistance of cutting tools with TiAlN and AlCrN coatings [J]. Surface and Coatings Technology, 2006, 200(20-21) 5738-5742.
  • 4Willmann H, Mayrhofer P H, Persson P O A, et al Thermal stability of Al-Cr-N hard coatings [J] Scripta Materialia, 2006, 54( 11): 1847-1851.
  • 5Endrino J L, Fox-Rabinovich G S, Reiter A, et al. Oxidation tuning in AlCrN coatings [J]. Surface and Coatings Technology, 2006, 201 (8): 4505-4511.
  • 6Bobzin K, Lugscheider E, Nickel R, et al. Wear behavior of Cr1-xAlxN PVD-coatings in dry running conditions [J]. Wear, 2007, 263(7-12): 1274-1280.
  • 7Mo J L, Zhu M H, Lei B, et al. Comparison of tribological behaviour of AlCrN and TiAlN coatings-deposited by physical vapor deposition [J]. Wear, 2007, 263(7-12): 1423-1429.
  • 8Vetter J, Knaup R, Dwuletzki H, et al. Hard coatings for lubrication reduction in metal forming [J]. Surface and Coatings Technology, 1996, 86-87(Part 2): 739- 747.
  • 9Endrino J L, Fox-Rabinovich G S, Gey C. Hard AlTiN, AlCrN PVD coatings for machining of austenitic stainless steel [J]. Surface and Coatings Technology, 2006, 200(24): 6840-6845.
  • 10Lugscheider E, Bobzin K, Hornig Th, et al. Investigation of the residual stresses and mechanical properties of (Cr, Al)N arc PVD coatings used for semi-solid metal (SSM) forming dies [J]. Thin Solid Films, 2002, 420-421:318-323.

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