Application of Electronic Technology in Non-Destructive Testing of Aerospace Materials

Authors

  • Jinyi Liu

DOI:

https://doi.org/10.54097/aqy3dy25

Keywords:

Electronics, aerospace materials, nondestructive testing, laser ultrasonic testing.

Abstract

Describes the application of electronic technology in nondestructive testing of aerospace materials, including the application of radiographic testing, eddy current testing, ultrasonic phased array testing, laser ultrasonic testing, and other testing, and analyzes the advantages of its use in improving the accuracy, speed, and reliability of testing.

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References

[1] Bi Kun. Exploration of the application of nondestructive testing technology based on electronic technology [J]. Electronic components and information technology. 2019, 3 (1 1): 89 - 90+93.

[2] Huo Haibo. Based on the application of nondestructive testing technology under electronic technology [J]. Computer products and circulation. 2019 (09): 71.72.

[3] Shen Tinglong. Based on the application of nondestructive testing technology under electronic technology [J]. Electronic production, 2018 (19): 52 - 53.

[4] PAN Bingxun. Industrial X-ray television inspection method [J]. Nondestructive Testing, 1980, 2 (02): 42 - 46.

[5] G.H. Xu. Eddy current detection [J]. Nondestructive Testing, 1980, 2 (01): 39 - 46.

[6] X. E. Gros, K. Ogi and K. Takahashi. Eddy current, ultrasonic C-scan and scanning acoustic microscopy testing of delaminated quasi-isotropic CFRP materials: a case study [J], Journal of Reinforced Plastics and Composites, 17 (5): 389 - 405, 1998.

[7] K Schutle, CH Baron. Load and failure analyses of CFRP laminates by means for electrical resistivity measurements [J]. Composites Science and Technology, 36 (1): 63 - 76, 1989.

[8] C Thiagarajan, I Sutherland, D Tunnicliffe. PE Irving, Electrical potential techniques for damage sensing in composite structures [J]. Proceeding of 2nd Europe Conference on Smart Structure and Material, 128 - 131, 1994.

[9] O Ceysson, M Salvia, L Vincent. Damage mechanisms characterization of carbon fiber/epoxy laminates by both electrical measurements and acoustic emission analysis [J]. Scripta Materialia, 34: 1273 - 1280, 1996.

[10] Zeng Xianlin, Xu Liangfa. Laser ultrasonic technology and its application in nondestructive testing [J]. Laser and Infrared, 2002, 32 (4): 224 - 227.

[11] Sohn Y, Krishnaswamy S. Interaction of a scanning laser-generated ultrasonic line source with a surface-breaking flaw [J]. Journal of the Acoustical Society of America, 2004, 115 (1): 172 - 81.

[12] Yashiro S, Takatsubo J, Miyauchi H, et al. A novel technique for visualizing ultrasonic waves ingeneral solid media by pulsed laser scan [J]. Ndt & E International, 2008, 41 (2): 137 - 144.

[13] Zhou Z, Zhang K, Zhou J, et al. Application of laser ultrasonic technique for non-contact detection of structural surface-breaking cracks [J]. Optics & Laser Technology, 2015, 73: 173 - 178.

[14] Audoin B, Bescond C, Guilbaud S. Measurement of stiffness coefficients at elevated temperatures by means of laser-generated ultrasonic waves [J]. Composites Science & Technology, 1998, 58 (5): 741 - 746.

[15] Zhao J, Qiu J, Ji H. Reconstruction of the Nine Stiffness Coefficients of Composites Using a Laser Generation Based Imaging Method[J]. Composites Science & Technology, 2016, 126:27-34.

[16] A C TAM. Applications of photoacoustic sensing techniques [J]. Rev. Mod. Phys., 1986, 58 (2): 81 - 431.

[17] H. Nishino, T. Tanaka, K. Yoshida, J. Takatsubo. Simultaneous measurement of the phase and group velocities of lamb waves in a laser-generation based imaging method. Ultrasonics, 2012, 52 (4): 530 - 535.

[18] M. Morii, N. Hu, H. Fukunaga, JH Li, YL Liu, S. Atobe Alamusi, JH Qiu. A new inverse algorithm for tomographic reconstruction of damage images using lamb waves. Computers Materials and Continua, 2011, 26 (1): 37.

[19] Jung-Ryul Lee, Chen Ciang Chia, Chan-Yik Park, Hyomi Jeong. Laser ultrasonic anomalous wave propagation imaging method with adjacent wave subtraction: Algorithm. Optics & Laser Technology, 2012, 44 (5): 1507 - 1515.

[20] Chen Ciang Chia, Jung-Ryul Lee, He-Jin Shin. Hot target inspection using a welded fibre acoustic wave piezoelectric sensor and a laser-ultrasonic mirror scanner. Measurement Science and Technology, 2009, 20 (12): 127003.

[21] Yun-Kyu An, Byeongjin Park and Hoon sohn. Complete noncontact laser ultrasonic imaging for automated crack visualization in a plate [J]. Smart Materials and Structures, 2013.

[22] Massimo Ruzzene. Frequency–wavenumber domain filtering for improved damage visualization. Smart Materials and Structures, 2007, 16 (6): 2116.

[23] Thomas E Michaels, Jennifer E Michaels, Massimo Ruzzene. Frequency–wavenumber domain analysis of guided wavefields. Ultrasonics, 2011, 51 (4): 452 - 466.

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Published

30-03-2025

How to Cite

Liu, J. (2025). Application of Electronic Technology in Non-Destructive Testing of Aerospace Materials. Highlights in Science, Engineering and Technology, 134, 228-233. https://doi.org/10.54097/aqy3dy25