• Infrared and Laser Engineering
  • Vol. 45, Issue 5, 504005 (2016)
Tao Shengjie*, Yang Zhengwei, Tian Gan, and Zhang Wei
Author Affiliations
  • [in Chinese]
  • show less
    DOI: 10.3788/irla201645.0504005 Cite this Article
    Tao Shengjie, Yang Zhengwei, Tian Gan, Zhang Wei. Method for improving detection efficiency using infrared pulse phase thermography[J]. Infrared and Laser Engineering, 2016, 45(5): 504005 Copy Citation Text show less
    References

    [1] Montanini R, Freni F. Non-destructive evaluation of thick glass fiber-reinforced composites by means of optically excited lock-in thermography[J]. Composites: Part A, 2012(43): 2075-2082.

    [2] Feng Chi, Hua Xiang. Applications of the infrared thermal wave technology in thermal barrier coating testing[J]. Applied Science and Tchnology, 2015, 42(1): 15-18. (in Chinese)

    [3] Tang Qingju, Wang Yang, Liu Junyan, et al. Detecting of defects in heat-resistant alloy coating structure plates using pulsed infrared thermography[J]. Infrared and Laser Engineering, 2013, 42(7): 1685-1690. (in Chinese)

    [4] Zhang Jinyu, Meng Xiangbing, Yang Zhengwei, et al. Numerical simulation and analysis of lock-in thermography for thickness measurement of coating[J]. Infrared and Laser Engineering, 2015, 44(1): 6-11. (in Chinese)

    [5] Li Yin, Zhang Wei, Yang Zhengwei, et al. Low-velocity impact damage characterization of carbon fiber reinforced polymer(CFRP) using infrared thermography[J]. Infrared Physics & Technology, 2016, 76: 91-102.

    [6] Tao Shengjie, Yang Zhengwei, Zhang Wei, et al. Research on measurement of coating thickness based on thermal image time characteristic[J]. Chinese Journal of Scientific Instrument, 2014, 35(8): 1810-1816. (in Chinese)

    [7] Masashi Ishikawa, Hiroshi Hatta, Yoshio Habuka, et al. Detecting deeper defects using pulse phase thermography[J]. Infrared Physics & Technology, 2013, 57: 42-49.

    [8] Waugh Rachael C, Dulieu-Barton Janice M, Quinn Simon. Defect detection using pulse phase thermography-repeatability and reliability of data[J]. Key Engineering Materials, 2013, 569-570: 1164-1169.

    [9] Henrik Schmutzler, Marko Alder, Nils Kosmann, et al. Degradation monitoring of impact damaged carbon fibre reinforced polymers under fatigue loading with pulse phase thermography[J]. Composites: Part B, 2014, 59: 221-229.

    [10] Bu Chiwu, Tang Qingju, Liu Junyan, et al. Inspection on CFRP sheet with subsurface defects using pulsed thermographic technique [J]. Infrared Physics & Technology, 2014, 65: 117-121.

    [11] Waugh R C, Dulieu-Barton J M, Quinn S. Modelling and evaluation of pulsed and pulse phase thermography through application of composite and metallic case studies[J]. NDT & E International, 2014, 66: 52-66.

    [12] Yu Jiajie, Wu Naiming, Zeng Zhi, et al. FRP depth measurement based on pulsed phase thermography[J]. Infrared and Laser Engineering, 2012, 41(7): 1893-1898. (in Chinese)

    [13] Liu Junyan, Liu Xun, Wang Yang. Technology of linear frequency modulation infrared thermal-wave imaging for nondestructive testing[J]. Infrared and Laser Engineering, 2012, 41(6): 1416-1422. (in Chinese)

    [14] Yuxia Duan, Stefanie Huebner, Ulf Hassler, et al. Quantitative evaluation of optical lock-in and pulsed thermography for aluminum foam material[J]. Infrared Physics & Technology, 2013, 60: 275-280.

    Tao Shengjie, Yang Zhengwei, Tian Gan, Zhang Wei. Method for improving detection efficiency using infrared pulse phase thermography[J]. Infrared and Laser Engineering, 2016, 45(5): 504005
    Download Citation