• Optics and Precision Engineering
  • Vol. 23, Issue 8, 2192 (2015)
LIU Hong-xi*, TAO Xi-de, ZHANG Xiao-wei, and YANG Xin-tian
Author Affiliations
  • [in Chinese]
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    DOI: 10.3788/ope.20152308.2192 Cite this Article
    LIU Hong-xi, TAO Xi-de, ZHANG Xiao-wei, YANG Xin-tian. Microstructure and interface distribution of Fe-Cr-Si-B-C laser cladding alloy coatings assisted by mechanical vibration[J]. Optics and Precision Engineering, 2015, 23(8): 2192 Copy Citation Text show less
    References

    [1] GIRISH R D, PAUL C P, GANDHI B K, et al.. Erosion wear behavior of laser clad surfaces of low carbon austenitic steel [J]. Wear, 2009, 266 (9-10): 975-987.

    [2] MERIAUDEZU F, TRUCHETET F. Control and optimization of the laser cladding process using matrix cameras and image processing [J]. Journal of Laser Applications, 1996, 8: 317-324.

    [3] LI SH, HU Q W, ZENG X Y. Research development of Fe-based alloy powder for laser cladding [J]. Laser Technology, 2004, 28 (6): 591-594.(in Chinese)

    [4] LI M Y, HAN B, GAO N, et al.. Microstructure composition and corrosion resistance of laser cladding Fe-based coating with high hardness [J]. Chinese Journal of Lasers, 2013, 40 (5): 0503003.(in Chinese)

    [5] DONG SH Y, MA Y ZH, XU B SH, et al.. Current status of material for laser cladding [J].Materials Review, 2006, 20 (6): 5-9. (in Chinese)

    [6] QIU X W, LI G, QIU L. The latest development and prospects of laser cladding technology [J]. Rare Metals and Cemented Carbides, 2013, 40(5): 54-56. (in Chinese)

    [7] WANG CH Q, LIU H X, ZHOU R, et al.. Influence of tempering on microstructure and corrosion resistance of multi-pass Ni-based coatings on 45 steel prepared by laser cladding [J]. Transactions of Materials and Heat Teratment, 2011, 32 (7): 145-150.(in Chinese)

    [8] CHEN CH Y, DENG Q L, SONG J L. Influence of Ni content and ultrasonic vibration to cracks in process of laser cladding [J]. Journal of Nanjing University of Aeronautics & Astronautics, 2005, 37(suppl.): 44-48.(in Chinese)

    [9] ZHANG W P, LIU SH, JI SH H, et al.. Research on behavior of grain refinement in metal-ceramic surface fine composite coating by laser cladding [J]. Journal of Materials Engineering, 2004, 8: 12-16.(in Chinese)

    [10] LIU H X, CAI CH X, JIANG Y H, et al.. Influence of alternative magnetic field on macro morphology and microstructure of laser cladding Fe-based composite coating [J]. Opt. Precision Eng., 2012, 20 (11): 2402-2410.(in Chinese)

    [11] ZHAO ZH,FAN Z T,DONG X P, et al.. Influence of mechanical vibration on the solidification of a lost foam cast 356 alloy [J]. China Foundry, 2010, 7 (1): 24-29.

    [12] GUAN J J, SONG T M, ZHANG G F, et al.. The effect of mechanical vibration on solidification of weld pool metal [J]. Journal of Fushun Petroleum Institute, 2001, 21 (4): 51-54.(in Chinese)

    [13] ZHANG G F, SONG T M, YIN CH J, et al.. The effect of mechanical vibration welding on the microstructure of weld and HAZ [J]. Transactions of the China Welding Institution, 2001, 22 (3): 85-87.(in Chinese)

    [14] ZHU ZH Q, ZHANG H, CHEN L G, et al.. Influence of vibration on the dynamic mechanics properties of weld metal [J]. China Mechanical Engineering, 2007, 18(7): 859-861.(in Chinese)

    [15] WU W T. Influence of vibration frequency on solidification of weldments [J]. Scripta Materials, 2000, 42 (7): 661-665.

    [16] FOROOZMEHR E, LIN D, KOVACEVIC R. Application of vibration in the laser powder deposition process [J]. Journal of Manufacturing Processes, 2009, 16 (11): 38-44.

    [17] WANG CH Q, LIU H X, ZHOU R, et al.. Microstructure of mechanical vibration assisted laser remelting Ni-based alloy and TiC composite coating [J]. Infrared and Laser Engineering, 2013, 42 (10): 2651-2657.(in Chinese)

    [18] EDWARD H,Jr KOTTCAMP. Volume 3 of the ASM Handbook [M]. The Materials Information Company, 1992: 1562-1563.

    [19] HU H Q. Metal Solidification Principle [M]. Beijing: China Machine Press, 2000: 279-284.(in Chinese)

    [20] HUANG Y J, ZENG X Y, HU Q W,et al.. Microstructure and interface interaction in laser induction hybrid cladding of Ni-based coating [J]. Applied Surface Science, 2009, 255 (7): 3940-3945.

    [21] YANG X CH, ZHANG T X, ZHANG N K, et al.. Convection and mass transfer in laser cladding on FeCrSiB alloy [J]. Acta Metallurgica Sinica, 1992, 28 (2): 84-88.(in Chinese)

    [22] CUI ZH Q. Metallography and Heat Treatment [M].Beijing: China Machine Press, 2007: 53-58.(in Chinese)

    [23] SHI SH H. Influences of technology and powder in laser cladding treatment on cracking behavior of cladding layer [J]. Heat Treatment of Metals, 1998, 23 (9): 31-32.(in Chinese)

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    LIU Hong-xi, TAO Xi-de, ZHANG Xiao-wei, YANG Xin-tian. Microstructure and interface distribution of Fe-Cr-Si-B-C laser cladding alloy coatings assisted by mechanical vibration[J]. Optics and Precision Engineering, 2015, 23(8): 2192
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