Photoelastic analysis of a three-dimensional specimen by optical slicing and digital image processing

被引:31
|
作者
Dupre, JC
Lagarde, A
机构
[1] Lab. de Mécanique des Solides, U. de Rech. Associee au CNRS, Université de Poitiers, 86960 Futuroscope Cedex, Boulevard 3
关键词
Laser Beam; Fluid Dynamics; Correlation Factor; Digital Image Processing; Speckle Pattern;
D O I
10.1007/BF02317303
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The authors show a nondestructive method for obtaining the isochromatic and isoclinic fringes in a three-dimensional photoelastic specimen. The basic idea is to delimit a slice between two plane laser beams. The properties of polarization of the scattered light (Rayleigh's law) and the interference possibilities of the diffused beams are used. By introducing speckle pattern properties, the correlation factor of the two scattered beams is similar to the illumination given in a plane polariscope for the investigation of a slice (in a classical frozen-stress technique). The authors use a monochromatic laser beam, a CCD camera and a personal computer. Because they cannot obtain the correlation factor directly, they do a statistical analysis of the speckle patterns. The variance (function of the correlation factor) is computed from the light intensities of three images corresponding to the speckle pattern for plane 1 alone, plane 2 alone, and both planes together.
引用
收藏
页码:393 / 397
页数:5
相关论文
共 50 条
  • [41] Three-Dimensional Digital Image Analysis of Immunostained Neurons in Thick Tissue Sections
    Selinummi, Jyrki
    Ruusuvuori, Pekka
    Lehmussola, Antti
    Huttunen, Heikki
    Yli-Harja, Olli
    Miettinen, Riitta
    2006 28TH ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY, VOLS 1-15, 2006, : 1991 - +
  • [42] Digital image based approach for three-dimensional mechanical analysis of heterogeneous rocks
    Chen, S.
    Yue, Z. Q.
    Tham, L. G.
    ROCK MECHANICS AND ROCK ENGINEERING, 2007, 40 (02) : 145 - 168
  • [43] Image Processing and Lattice Determination for Three-Dimensional Nanocrystals
    Jiang, Linhua
    Georgieva, Dilyana
    Nederlof, Igor
    Liu, Zunfeng
    Abrahams, Jan Pieter
    MICROSCOPY AND MICROANALYSIS, 2011, 17 (06) : 879 - 885
  • [44] Three-dimensional image processing in the future of immersive media
    Isgrò, F
    Trucco, E
    Kauff, P
    Schreer, O
    IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS FOR VIDEO TECHNOLOGY, 2004, 14 (03) : 288 - 303
  • [45] Image Processing based on three-dimensional stereo vision
    Wang Tingting
    MECHATRONICS ENGINEERING, COMPUTING AND INFORMATION TECHNOLOGY, 2014, 556-562 : 5017 - 5020
  • [46] Analysis of spark paths in air using three-dimensional image capturing and processing
    MacAlpine, JMK
    Qiu, DH
    Yim, HT
    Li, ZY
    IMAGING SCIENCE JOURNAL, 2000, 48 (03): : 131 - 140
  • [47] Three-dimensional imaging of micro-specimen by optical scanning holography
    Liu, Jung-Ping
    Tsou, Cheng-Hao
    BIOMEDICAL IMAGING AND SENSING CONFERENCE, 2017, 10251
  • [48] Fast acquisition system for digital holograms and image processing for three-dimensional display with data manipulation
    Matoba, Osamu
    Hosoi, Kousuke
    Nitta, Kouichi
    Yoshimura, Takeaki
    APPLIED OPTICS, 2006, 45 (35) : 8945 - 8950
  • [49] Three-dimensional examination of bone structure around hydroxyapatite implants using digital image processing
    Wigianto, R
    Ichikawa, T
    Kanitani, H
    Horiuchi, M
    Matsumoto, N
    Ishizuka, H
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 1997, 34 (02): : 177 - 182
  • [50] Application of three-dimensional digital image processing for reconstruction of microstructural volume from serial sections
    Tewari, A
    Gokhale, AM
    MATERIALS CHARACTERIZATION, 2000, 44 (03) : 259 - 269