MICROSTRAIN DETERMINATION IN INDIVIDUAL GRAINS OF LASER DEPOSITED CLADDING LAYERS.

被引:1
|
作者
de Oliveira, Uazir O. B. [1 ]
Ocelik, Vaclav [1 ]
De Hosson, Jeff T. M. [1 ]
机构
[1] Univ Groningen, Ctr Mat Sci, Dept Appl Phys, Nijenborgh 4, NL-9747 AG Groningen, Netherlands
关键词
laser cladding; micro strain; X-ray diffraction;
D O I
10.4028/www.scientific.net/AMR.15-17.153
中图分类号
O414.1 [热力学];
学科分类号
摘要
The laser cladding technique makes the deposition of thick metallic, wear and corrosion resistant coatings feasible on weaker substrates. During the process, localized high thermal gradients generate internal stresses that may cause cracking when these overcome the fracture stress. To explain the formation and development of micro residual stresses the synchrotron 3DXRD microscopy technique was employed to investigate the strain tensor of individual grains of a Co based alloy cladding layer. The experimental method is based on the set of diffractions from a rotating specimen followed by indexing of reflections and identification of individual diffracting grains. The components of the strain tensor for these grains are calculated by a decomposition method applied to over-determined system of linear equations. The results of the individual strains tensor indicate modulation of the strains over neighboring grains. The final stress state depends on the solidification and cooling trajectory. Those groups of grains that solidify first are initially stress-free surrounded by molten material. The neighboring grains that solidify later will then assume the tensile character of the strain once the melt shrinks but limited by prior resolidified grains.
引用
收藏
页码:153 / 158
页数:6
相关论文
共 50 条
  • [21] Research Status of Subsequent Machining of Laser Cladding Layers
    Li L.
    Cai Y.
    Li G.
    Liu M.
    Recent Patents on Engineering, 2022, 16 (01):
  • [22] Laser beam cladding of graded layers and freeform components
    Theiler, C
    Seefeld, T
    Schubert, E
    Sepold, G
    ECLAT - EUROPEAN CONFERENCE ON LASER TREATMENT OF MATERIALS, 1998, : 455 - 460
  • [23] Geometric Modelling of Added Layers by Coaxial Laser Cladding
    Tabernero, I.
    Lamikiz, A.
    Martinez, S.
    Ukar, E.
    Lopez de Lacalle, L. N.
    LASER ASSISTED NET SHAPE ENGINEERING 7 (LANE 2012), 2012, 39 : 913 - 920
  • [24] OBTAINING OF METAL MATRIX COMPOSITES LAYERS BY LASER CLADDING
    Pavalache, Adrian-Catalin
    Voiculescu, Ionelia
    Iordachescu, Danut
    Vasile, Georgiana
    Stanciu, Elena-Manuela
    Apostol, Georgeta
    METALURGIA INTERNATIONAL, 2011, 16 (05): : 121 - 124
  • [25] Individual laser cladding for high pressure turbine blades
    Weidlich, N.
    Grueninger, A.
    Meier, O.
    Emiljanow, K.
    Stippler, P.
    Seidel, F.
    1ST EUCOMAS, 2008, 2028 : 227 - 233
  • [26] Directionally deposited microstructures prepared by laser cladding + electrospark deposition
    Wang, Wei-Fu
    Wang, Mao-Cai
    Hongwai yu Jiguang Gongcheng/Infrared and Laser Engineering, 2010, 39 (04): : 751 - 755
  • [27] CHARACTERIZATION OF LASER IRRADIATED DEPOSITED SILICON LAYERS
    CELLER, GK
    LEAMY, HJ
    ASPNES, DE
    DOHERTY, CJ
    SHENG, TT
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1980, 127 (08) : C385 - C385
  • [28] Ferromagnetism in laser-deposited GaMnAs layers
    O. V. Vikhrova
    Yu. A. Danilov
    E. S. Demidov
    B. N. Zvonkov
    V. I. Kovalev
    Z. E. Kun’kova
    V. V. Podol’skii
    M. V. Sapozhnikov
    A. I. Suchkov
    M. P. Temiryazeva
    Bulletin of the Russian Academy of Sciences: Physics, 2007, 71 (1) : 32 - 34
  • [29] Improved bipolar cascade laser characteristics by optimization of InP electron stopper layers.
    Dross, F
    van Dijk, F
    Vinter, B
    2004 International Conference on Indium Phosphide and Related Materials, Conference Proceedings, 2004, : 400 - 402
  • [30] EXPERIMENTAL DETERMINATION OF DEFECTS AND CHARGE RELAXATION IN HIGH-RESISTIVITY SEMICONDUCTOR LAYERS.
    Arsent'ev, Yu.A.
    Grishchenko, V.L.
    Martsinkyavichus, V.A.
    Naumenko, L.M.
    Pronin, V.P.
    The Soviet journal of nondestructive testing, 1981, 17 (05): : 390 - 394