Heat Treatment and Nondestructive Testing: Finding Surface Cracks using Laser-Thermography

被引:1
|
作者
Ziegler, M. [1 ]
Myrach, P. [1 ]
Neding, B. [1 ]
机构
[1] BAM Bundesanstalt Mat Forsch & Prufung, D-12200 Berlin, Germany
来源
HTM-JOURNAL OF HEAT TREATMENT AND MATERIALS | 2015年 / 70卷 / 04期
关键词
Nondestructive testing; thermography; thermal infrared sensor; crack inspection; laser techniques;
D O I
10.3139/105.110264
中图分类号
O414.1 [热力学];
学科分类号
摘要
Thermography is a nondestructive technique that allows for a detection of a multitude of defects within a large variety of materials. For this purpose we need, on the one hand, an energy source giving rise to a heat flow within the work piece and, on the other hand, an infrared camera that we use in order to analyze the surface temperature distribution of the work piece in a spatial-temporally resolved manner. Novel approaches utilize lasers and hence allow for testing of tiny surface cracks. The present detection limit for the detection of cracks with submicron width and depths in highly-reflecting metal surfaces lies below that of the classical thermographic techniques and is actually within the range of fluorescent magnetic particle and penetration testing. Contrary to those techniques, neither commonly used facilities (casually environmental-polluting) nor surface preparation techniques are necessary, and the inspection is performed contactless and automated within distances ranging in meters. During heat treatment, particularly during case hardening using laser radiation, powerful energy sources are available generating intensive and dynamic temperature gradients. Consequently, the use of these facilities enables the possibility to implement thermographic test methods into the manufacturing process chain. The paper presents the latest developments of this promising laser-thermography technique and demonstrates why it has the potential to exceed magnetic particle and penetration testing methods respecting various inspection tasks.
引用
收藏
页码:190 / 195
页数:6
相关论文
共 44 条
  • [31] Computer simulation of metal surface micro-crack inspection using pulsed laser thermography
    Tang Q.
    Bu C.
    Liu Y.
    Yu F.
    Zhao Y.
    International Journal of Multimedia and Ubiquitous Engineering, 2016, 11 (03): : 249 - 256
  • [32] Nondestructive testing of express train wheel using the linearly integrated Hall sensors array on a curved surface
    Jun, Jongwoo
    Choi, Myoungki
    Lee, Jinyi
    Seo, Jungwon
    Shin, Kisu
    NDT & E INTERNATIONAL, 2011, 44 (05) : 449 - 455
  • [33] Sizing of micro cracks using laser-induced broad-band surface waves
    Ochiai, M
    Butsuen, T
    Miura, T
    Kuroda, H
    Soramoto, S
    Kanemoto, S
    JOURNAL OF THE ATOMIC ENERGY SOCIETY OF JAPAN, 2001, 43 (03): : 275 - 281
  • [34] Full-field surface heat flux measurement using non-intrusive infrared thermography
    Rippe, Christian M.
    Lattimer, Brian Y.
    FIRE SAFETY JOURNAL, 2015, 78 : 238 - 250
  • [35] Development of Automatic Crack Detection Technology in Welded Surface using Laser Active Thermography and CNN Deep Learning
    Kim, Chisung
    Hwang, Soonkyu
    Chung, Junyeon
    Sohn, Hoon
    JOURNAL OF THE KOREAN SOCIETY FOR NONDESTRUCTIVE TESTING, 2020, 40 (03) : 163 - 173
  • [36] The structure and the magnetic and mechanical properties of steel M74 and the possibility of nondestructive testing of heat-treatment-hardened rails
    Bida, GV
    Nichipuruk, AP
    Kamardin, VM
    Stashkov, AN
    RUSSIAN JOURNAL OF NONDESTRUCTIVE TESTING, 2005, 41 (06) : 391 - 402
  • [37] The Structure and the Magnetic and Mechanical Properties of Steel M74 and the Possibility of Nondestructive Testing of Heat-Treatment-Hardened Rails
    G. V. Bida
    A. P Nichipuruk
    V. M. Kamardin
    A. N. Stashkov
    Russian Journal of Nondestructive Testing, 2005, 41 : 391 - 402
  • [38] Features of Laser-Vibrometric Nondestructive Testing of Polymer Composite Materials Using Air-Coupled Ultrasonic Transducers
    D. A. Derusova
    V. P. Vavilov
    V. O. Nekhoroshev
    V. Yu. Shpil’noi
    N. V. Druzhinin
    Russian Journal of Nondestructive Testing, 2021, 57 : 1060 - 1071
  • [39] Specific Features of Nondestructive Testing of Polymer and Composite Materials Using Air-Coupled Ultrasonic Excitation and Laser Vibrometry
    Shpil'noi, V. Yu
    Vavilov, V. P.
    Derusova, D. A.
    Druzhinin, N., V
    Yamanovskaya, A. Yu
    RUSSIAN JOURNAL OF NONDESTRUCTIVE TESTING, 2021, 57 (08) : 647 - 655
  • [40] Specific Features of Nondestructive Testing of Polymer and Composite Materials Using Air-Coupled Ultrasonic Excitation and Laser Vibrometry
    V. Yu. Shpil’noi
    V. P. Vavilov
    D. A. Derusova
    N. V. Druzhinin
    A. Yu. Yamanovskaya
    Russian Journal of Nondestructive Testing, 2021, 57 : 647 - 655