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纳米复合材料激光熔覆层组织及抗磨性能 被引量:23

Microstructure and Wear-Resistance of Nano-Al_2O_3 Doped Co-Alloy-Based Composite Coating Produced by Laser Cladding
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摘要 利用5kWCO2激光器,在Ni基高温合金表面制备了纳米Al2O3/钴基合金熔覆层,分析了熔覆层的组织结构及其抗磨性能.结果表明,当纳米Al2O3颗粒含量较低时,Al2O3颗粒能均匀分布于熔覆层中,从而形成纳米氧化物弥散强化的复合材料涂层;Al2O3颗粒在熔池中长大,尺寸为250~450nm;复合材料熔覆层的硬度随纳米Al2O3含量的增加而提高;当纳米Al2O3颗粒含适中时,熔覆层的抗磨性能较好;而当纳米Al2O3颗粒含量过高(3.0%)时,复合材料熔覆层的抗磨性能反而降低. Cobalt-based composite coatings doped with nano-Al2O3 were prepared on Ni-based superalloy substrate by laser-cladding of a CO2 laser. The microstructures of the coatings were analyzed by means of optical microscopy, scanning electron microscopy, and transmission electron microscopy, while the elemental composition and phase composition of the composite coating were determined by means of X-ray diffraction and energy dispersive X-ray analysis. Moreover, the microhardness of the coatings were measured, while the friction and wear behaviors of the composite coatings sliding against 9CrSi alloy in a block-on-ring configuration were evaluated on an MM-200 test rig. The worn surface morphologies of the composite coatings were also observed by means of scanning electron microscopy. It was found that the incorporation of the nano-Al2O3 particulates contributed to increasing the microhardness and wear-resistance of the laser-cladded composite coating, which was attributed to the dispersive strengthening effect and fine-crystalline strengthening effect of the nano-particulates. However, with the increase of the nano- Al2O3 amount in the composite coating, the nano-particulates would agglomerate and act as entrapped impurities of decreased bonding strength with the Co-alloy matrix, which led to the decrease in the wear-resistance of the coating. The composite coatings were characterized by scuffing, adhesion, and spalling as they slid against the 9CrSi alloy. Specifically, the enhanced adhesion and spalling of the composite coating with a higher content of nano-Al2O3 corresponded to its poorer wear-resistance, though it had a relatively larger microhardness.
出处 《摩擦学学报》 EI CAS CSCD 北大核心 2004年第5期443-447,共5页 Tribology
基金 安徽省科技厅2004年重点科研项目(04022004).
关键词 钴基合金 Al2O3纳米晶 激光熔覆 复合材料涂层 抗磨性能 Cladding (coating) Microhardness Microstructure Morphology Scanning electron microscopy Transmission electron microscopy Wear resistance X ray diffraction analysis
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  • 1Heilmaier M, Maier H J, Jung A, et al. Cyclic stress-strain response of the ODS nickel-base, superalloy PM 1000 under variable amplitude loading at high temperatures[J]. Materials Science and Engineering, 2000, 281: 37-44.
  • 2Klimiankou M, Lindau R, Moslang A. HRTEM Study of yttrium oxide particles in ODS steels for fusion reactor application[J]. Journal of Crystal Growth, 2003, 249: 381-387.
  • 3Zeng Yi, Lee S W, Gao L, et al. Atmospheric plasma sprayed coatings of nanostructured zirconia[J]. Journal of the European Ceramic Society, 2002, 22: 347-351.
  • 4Jiang W P, Molian P. Nanocrystalline TiC powder alloying and glazing of H13 steel using a CO2 laser for improved life of die-casting dies[J]. Surface and Coatings Technology, 2001, 135: 139-149.
  • 5Silvain J F, Niino H, Yabe A. Nucleation and growth of surface microstructures on Nd: YAG laser ablated elastomer/carbon composite[J]. Composites: Part A: Applied Science and Manufacturing, 2000, (3): 469-478.
  • 6Gaumann M, Trivedi R, Kurz W. Nucleation ahead of the advancing interface in direction solidification[J]. Materials Science and Engineering, 1997, 226: 763-769.
  • 7Gleiter H. Nanosturctured materials: Basic concepts and Microstructure[J]. Acta Mater, 2000, 48: 1-29.
  • 8徐龙堂,徐滨士,周美玲,马世宁,张伟.电刷镀镍/镍包纳米Al_(2)O_(3)颗粒复合镀层微动磨损性能研究[J].摩擦学学报,2001,21(1):24-27. 被引量:98
  • 9李明喜,何宜柱,孙国雄.Co基合金激光熔覆层组织及近表面结晶方向[J].东南大学学报(自然科学版),2002,32(6):932-935. 被引量:16

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