• Infrared and Laser Engineering
  • Vol. 52, Issue 9, 20220902 (2023)
Huipeng Wang1, Sicong Zhai1,2, Jie Yang2,3, Lihong Dong2,*, and Haidou Wang2,4
Author Affiliations
  • 1School of Mechanical and Electrical Engineering, Jiangxi University of Science and Technology, Ganzhou 341000, China
  • 2National Key Lab for Remanufacturing, Army Academy of Armored Forces, Beijing 100072, China
  • 3Unit 65426 of PLA, Weifang 261000, China
  • 4National Engineering Research Center for Remanufacturing, Army Academy of Armored Forces, Beijing 100072, China
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    DOI: 10.3788/IRLA20220902 Cite this Article
    Huipeng Wang, Sicong Zhai, Jie Yang, Lihong Dong, Haidou Wang. Quantitative detection of surface crack width of aluminum alloy based on laser thermography[J]. Infrared and Laser Engineering, 2023, 52(9): 20220902 Copy Citation Text show less
    References

    [1] W J Zheng, Z B Dong, Y H Wei, et al. Phase field investigation of dendrite growth in the welding pool of aluminum alloy 2A14 under transient conditions. Computational Materials Science, 82, 525-530(2014).

    [2] Wu H B. Numerical simulation experimental study of milling defmation of aeronautical frame type monolithic structural parts[D]. Hangzhou: Zhejiang University, 2008. (in Chinese)

    [3] X Maldague. Introduction to NDT by active infrared thermography. Materials Evaluation, 60, 1060-1073(2002).

    [4] Xinhao Zhu, Dexin Hou, Shuliang Ye, . Dual linear array laser thermography detection of arbitrary direction cracks on cylindrical surface. Infrared and Laser Engineering, 49, 20200097(2020).

    [5] Xiaona Wang, Yishu Zhang, Dexin Hou, . Detection of microcrack in inductor based on orthogonal scanning line laser thermography. Infrared and Laser Engineering, 49, 20190522(2020).

    [6] Yi Liu, Haodong Shi, Huilin Jiang, . Infrared polarization properties of targets with rough surface. Chinese Optics, 13, 459-471(2020).

    [7] Jianguo Yang, Lin Luo, Weiqi Jin, . Bionic thermal imaging with cross-shaped four-aperture partially overlapped field of view. Optics and Precision Engineering, 30, 1019-1028(2022).

    [8] Yongning Zou, Zhibin Zhang, Qi Li, . Crack detection and segmentation in CT images using Hessian matrix and support vector machine. Optics and Precision Engineering, 29, 2517-2527(2021).

    [9] Jiawang Zhao, Yunhai Zhang, Famin Wang, . Line-scanning confocal microscopic imaging based on virtual structured modulation. Chinese Optics, 14, 431-445(2021).

    [10] N Puthiyaveettil, P Rajagopal, K Balasubramaniam, et al. Influence of absorptivity of the material surface in crack detection using Laser spot thermography. NDT & E International, 120, 102438(2021).

    [11] F Khodayar, S Sojasi, X Maldague. Infrared thermography and NDT: 2050 horizon. Quantitative InfraRed Thermography Journal, 13, 210-231(2016).

    [12] J Qiu, C Pei, H Liu, et al. Detection of surface cracks by laser spot thermography at elevated temperature. International Journal of Applied Electromagnetics and Mechanics, 59, 1553-1559(2019).

    [13] Rashed A, Almond D P, Rees D A S, et al. Crack detection by laser spot imaging thermography[C]AIP Conference Proceedings, 2007, 894(1): 500506.

    [14] N W Pech-May, A Oleaga, A Mendioroz, et al. Fast characterization of the width of vertical cracks using pulsed laser spot infrared thermography. Journal of Nondestructive Evaluation, 35, 1-10(2016).

    [15] J González, A Mendioroz, A Sommier, et al. Fast sizing of the width of infinite vertical cracks using constant velocity Flying-Spot thermography. NDT & E International, 103, 166-172(2019).

    [16] N W Pech-May, A Oleaga, A Mendioroz, et al. Vertical cracks characterization using lock-in thermography: II nfinite cracks. Measurement Science and Technology, 25, 115602(2014).

    [17] Y Jinyeol, C Jaemook, H Soonkyu, et al. A reference-free micro defect visualization using pulse laser scanning thermography and image processing. Measurement Science and Technology, 27, 085601(2016).

    [18] Colom M, Rodriguez A J, Mendioz A, et al. Imaging real cracks: evaluation of the depth width of narrow fatigue cracks in Alalloys using laserspot lockin thermography[C]Thermosense: Thermal Infrared Applications XLIII, 2021, 11743: 117430F.

    [19] J Yang, L H Dong, H D Wang, et al. The curve cluster analyses for the characterizations of material defects by long-pulsed laser thermography. Infrared Physics & Technology, 120, 103956(2022).

    [20] J Yang, L H Dong, H D Wang, et al. The wavelet-based self-similarity analysis for the detection of fatigue microcrack by the joint scanning laser thermography. International Journal of Thermophysics, 43, 1-22(2022).

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    [1] Yunze HE, Qi CHEN, Hongjin WANG, Baoyuan DENG, Ruizhen YANG, Yaonan WANG. Research progress of laser thermography non-destructive testing (invited)[J]. Infrared and Laser Engineering, 2024, 53(7): 20240144

    Huipeng Wang, Sicong Zhai, Jie Yang, Lihong Dong, Haidou Wang. Quantitative detection of surface crack width of aluminum alloy based on laser thermography[J]. Infrared and Laser Engineering, 2023, 52(9): 20220902
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