Development of laser lock-in thermography for plasma facing component surface characterisation

被引:5
|
作者
Courtois, X. [1 ]
Sortais, C. [2 ]
Melyukov, D. [2 ]
Gardarein, J. L. [3 ]
Semerok, A. [2 ]
Grisolia, Ch. [1 ]
机构
[1] CEA, IRFM, F-13108 St Paul Les Durance, France
[2] CEA, DEN, F-91191 Gif Sur Yvette, France
[3] Univ Aix Marseille 1, IUSTI, CNRS, UMR 65 95, Marseille, France
基金
欧盟地平线“2020”;
关键词
Plasma facing component; Lock-in thermography; Laser;
D O I
10.1016/j.fusengdes.2011.04.071
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
Infrared (IR) photothermal techniques are candidates for in situ characterisation of tokamak plasma facing components (PFC) surfaces, by means of an external thermal excitation coupled with an IR temperature measurement. Among these techniques, the laser lock-in thermography (LLIT) uses a modulated laser excitation which gives 2 major advantages: enhancement of signal to noise ratio and emissivity independence, which is a plus when the components have various and unpredictable surface quality. With this method, it is possible to develop a process, which could be used remotely, either mounted onto an in situ inspection device (articulated arm) or in a PFC test bed. This paper presents the results obtained with a continuous modulated laser heat source on particular samples (W coating on CFC substrate, C layer on graphite substrate). The identification of the experimental data with a theoretical model allows a quantitative characterisation of the layers. (C) 2011 Elsevier B.V. All rights reserved.
引用
收藏
页码:1714 / 1718
页数:5
相关论文
共 50 条
  • [31] 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):
  • [32] Shunts due to laser scribing of solar cells evaluated by highly sensitive lock-in thermography
    Breitenstein, O
    Langenkamp, M
    Lang, O
    Schirrmacher, A
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2001, 65 (1-4) : 55 - 62
  • [33] Defect detection in CFRP by infrared thermography with CO2 Laser excitation compared to conventional lock-in infrared thermography
    Keo, Sam Ang
    Brachelet, Franck
    Breaban, Florin
    Defer, Didier
    COMPOSITES PART B-ENGINEERING, 2015, 69 : 1 - 5
  • [34] Measuring the in-plane thermal diffusivity of moving samples using laser spot lock-in thermography
    Colom, M.
    Bedoya, A.
    Mendioroz, A.
    Salazar, A.
    INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2020, 151
  • [35] Sizing the Depth and Width of Narrow Cracks in Real Parts by Laser-Spot Lock-In Thermography
    Colom, Mateu
    Rodriguez-Aseguinolaza, Javier
    Mendioroz, Arantza
    Salazar, Agustin
    MATERIALS, 2021, 14 (19)
  • [36] Open crack depth sizing by multi-speed continuous laser stimulated lock-in thermography
    Boue, C.
    Hole, S.
    MEASUREMENT SCIENCE AND TECHNOLOGY, 2017, 28 (06)
  • [37] Rapid determination of the fatigue limit of aluminum alloy riveted component based on lock-in infrared thermography technique
    Li, Meng
    Li, Xu-Dong
    Zhang, Hui
    Wu, Dong-Liu
    Liu, Xun
    Liu, Jun-Yan
    Gongcheng Lixue/Engineering Mechanics, 2012, 29 (12): : 28 - 33
  • [38] Depth Evaluation of Curvilinear Cracks in Metal Using Multi-speed Laser Lock-in Thermography Method
    C. Boué
    S. Holé
    Journal of Nondestructive Evaluation, 2022, 41
  • [39] Depth Evaluation of Curvilinear Cracks in Metal Using Multi-speed Laser Lock-in Thermography Method
    Boue, C.
    Hole, S.
    JOURNAL OF NONDESTRUCTIVE EVALUATION, 2022, 41 (02)
  • [40] Application of Lock-in Thermography on PCB for Fault Localization and Validation of Failure Mechanism Due to External Discrete Component Variation
    Ng, William
    Weaver, Kevin
    Gemmill, Zachary
    Deslandes, Herve
    Schlangen, Rudolf
    ISTFA 2010: CONFERENCE PROCEEDINGS FROM THE 36TH INTERNATIONAL SYMPOSIUM FOR TESTING AND FAILURE ANALYSIS, 2010, : 191 - 195