GLUED STRUCTURES INSPECTION BASED ON LOCK-IN THERMOGRAPHY

被引:0
|
作者
Perez, Laetitia [1 ]
Autrique, Laurent [2 ]
机构
[1] Univ Nantes, LTN, F-44306 Nantes 03, France
[2] Univ Angers, LARIS, F-49000 Angers, France
来源
TWELFTH INTERNATIONAL CONFERENCE ON QUALITY CONTROL BY ARTIFICIAL VISION | 2015年 / 9534卷
关键词
Non-destructive testing; defect detection; composite materials; active thermography; automated diagnosis; SIMPLEX-METHOD; THERMAL WAVES;
D O I
10.1117/12.2185131
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Active thermography is a widely employed technique for parametric identification and non-destructive inspection. This attractive method is based on the observation of thermal waves propagation induced by a periodic heating. For non-destructive testing usual approaches are based on a global heating (a large surface of the inspected material is submitted to thermal excitation). In the following a local approach is investigated: the heated area is small (order of magnitude is one square centimeter) and lateral propagation is studied in order to reveal the defect in the sample. In fact, both modulus (heat wave amplitude) and phase lag (delay) of the measured periodic signal are modified by the defect neighborhood and the search for the most effective area leads to the defect localization. Several results are highlighted in this communication in order to investigate an automated procedure. Temperatures are measured by an infrared camera and analyses of modulus cartography are performed in order to estimate the defect location. In such an aim, the downhill simplex method is implemented in order to converge toward defect location. Illustrations are dedicated to glued structures (two plates separated by a thin glue interface) for which unknown defect is a lack of glue which can be considered as a bubble (air trapped between the lower and the upper plane surface). Automated method attractiveness is established in several configurations.
引用
收藏
页数:7
相关论文
共 50 条
  • [21] Lock-in thermography with a focal plane array
    Horny, N
    Lannoy, B
    MEASUREMENT SCIENCE AND TECHNOLOGY, 2003, 14 (04) : 439 - 443
  • [22] Use of lock-in thermography in industrial applications
    Giorleo, Giuseppe
    Meola, Carosena
    Squillace, Antonino
    Nondestructive Testing and Evaluation, 2000, 16 (01) : 15 - 29
  • [23] Lock-in thermography for nondestructive evaluation of materials
    Wu, DT
    Busse, G
    REVUE GENERALE DE THERMIQUE, 1998, 37 (08): : 693 - 703
  • [24] Ultrasound lock-in thermography - a defect-selective NDT method for the inspection of aerospace components
    Zweschper, T
    Dillenz, A
    Busse, G
    INSIGHT, 2001, 43 (03) : 173 - 179
  • [25] Lock-in Thermography for the Development of New Materials
    Nolte, Peter W.
    Malvisalo, Timo
    Rimbach, A. Charlotte
    Steudel, Franziska
    Ahrens, Bernd
    Schweizer, Stefan
    MATERIALS TODAY-PROCEEDINGS, 2017, 4 : S128 - S134
  • [26] Lock-in thermography for characterization of nuclear materials
    Semerok, Alexandre
    Sang Pham Tu Quoc
    Cheymol, Guy
    Gallou, Catherine
    Maskrot, Hicham
    Moutiers, Gilles
    EPJ NUCLEAR SCIENCES & TECHNOLOGIES, 2016, 2
  • [27] Hybrid inspection method using 3 dimensional scanning, lock-in thermography and laser shearography
    Jansen, H.P.
    Platenkamp, D.J.
    Hwang, J.S.
    e-Journal of Nondestructive Testing, 2024, 29 (06):
  • [28] A SIMPLE METHOD FOR DETERMINING A THICKNESS OF METAL BASED ON LOCK-IN THERMOGRAPHY
    Zrhaiba, A.
    Balouki, A.
    Elhassnaoui, A.
    Yadir, S.
    Halloua, H.
    Sahnoun, S.
    SURFACE REVIEW AND LETTERS, 2020, 27 (02)
  • [29] A new measurement method of coatings thickness based on lock-in thermography
    Zhang, Jin-Yu
    Meng, Xiang-bin
    Ma, Yong-chao
    INFRARED PHYSICS & TECHNOLOGY, 2016, 76 : 655 - 660
  • [30] Local efficiency analysis of solar cells based on lock-in thermography
    Breitenstein, Otwin
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2012, 107 : 381 - 389