DOI QR코드

DOI QR Code

Development of rotational pulse-echo ultrasonic propagation imaging system capable of inspecting cylindrical specimens

  • Ahmed, Hasan (Department of Aerospace Engineering, Korean Advanced Institute for Science and Technology) ;
  • Lee, Young-Jun (Department of Aerospace Engineering, Korean Advanced Institute for Science and Technology) ;
  • Lee, Jung-Ryul (Department of Aerospace Engineering, Korean Advanced Institute for Science and Technology)
  • Received : 2020.03.20
  • Accepted : 2020.08.07
  • Published : 2020.11.25

Abstract

A rotational pulse-echo ultrasonic propagation imager that can inspect cylindrical specimens for material nondestructive evaluations is proposed herein. In this system, a laser-generated ultrasonic bulk wave is used for inspection, which enables a clear visualization of subsurface defects with a precise reproduction of the damage shape and size. The ultrasonic waves are generated by a Q-switched laser that impinges on the outer surface of the specimen walls. The generated waves travel through the walls and their echo is detected by a Laser Doppler Vibrometer (LDV) at the same point. To obtain the optimal Signal-to-Noise Ratio (SNR) of the measured signal, the LDV requires the sensed surface to be at a right angle to the laser beam and at a predefined constant standoff distance from the laser head. For flat specimens, these constraints can be easily satisfied by performing a raster scan using a dual-axis linear stage. However, this arrangement cannot be used for cylindrical specimens owing to their curved nature. To inspect the cylindrical specimens, a circular scan technology is newly proposed for pulse-echo laser ultrasound. A rotational stage is coupled with a single-axis linear stage to inspect the desired area of the specimen. This system arrangement ensures that the standoff distance and beam incidence angle are maintained while the cylindrical specimen is being inspected. This enables the inspection of a curved specimen while maintaining the optimal SNR. The measurement result is displayed in parallel with the on-going inspection. The inspection data used in scanning are mapped from rotational coordinates to linear coordinates for visualization and post-processing of results. A graphical user interface software is implemented in C++ using a QT framework and controls all the individual blocks of the system and implements the necessary image processing, scan calculations, data acquisition, signal processing and result visualization.

Keywords

Acknowledgement

This research was supported by the Ministry of Trade, Industry, and Energy (MOTIE), Korea, under reference number R0006462 supervised by the Korea Institute for Advancement of Technology (KIAT) and the National Research Foundation of Korea (NRF), grant funded by the Ministry of Science and ICT (NRF-2017R1A5A1015311).

References

  1. Abbas, M. and Shafiee, M. (2018), "Structural health monitoring (SHM) and determination of surface defects in large metallic structures using ultrasonic guided waves", Sensors, 18(11), 3958. https://doi.org/10.3390/s18113958.
  2. Abbas, S.H. and Lee, J.R. (2018), "High-speed angular-scan pulseecho ultrasonic propagation imager for in situ non-destructive evaluation", Smart Struct. Syst., Int. J., 22(2), 223-230. https://doi.org/10.12989/sss.2018.22.2.223.
  3. Connolly, J.W. (2016), In Understanding the Magic of the Bicycle, Morgan and Claypool Publishers, San Rafael, USA. https://doi.org/10.1088/978-1-6817-4441-4ch10.
  4. Flynn, E.B., Chong, S.Y., Jarmer, G.J. and Lee, J.R. (2013), "Structural imaging through local wavenumber estimation of guided waves", NDT E Int., 59, 1-10. https://doi.org/10.1016/j.ndteint.2013.04.003.
  5. Hillger, W., Bühling, L., Ilse, D. and Büro, H.I. (2014), "Aircoupled ultrasonic testing-method, system and practical applications", Proceedings of the 11th European Conference on Non-Destructive Testing (ECNDT 2014), Prague, Czech Republic, October.
  6. Hong, S.C., Lee, J.R. and Park, J. (2016), "Composite NDE using full-field pulse-echo ultrasonic propagation imaging system", Proceedings of the Active and Passive Smart Structures and Integrated Systems, Nevada, USA, March.
  7. Lee, C. and Park, S. (2015), "Damage visualization of pipeline structures using laser-induced ultrasonic waves", Struct. Health Monit., 14(5), 475-488. https://doi.org/10.1177/1475921715596220.
  8. Lee, J.R., Chong, S.Y., Jeong, H. and Kong, C.W. (2011), "A timeof-flight mapping method for laser ultrasound guided in a pipe and its application to wall thinning visualization", NDT E Int., 44(8), 680-691. https://doi.org/10.1016/j.ndteint.2011.07.005.
  9. Lee, Y.J., Lee, J.R. and Ihn, J.B. (2018), "Composite repair patch evaluation using pulse-echo laser ultrasonic correlation mapping method", Compos. Struct., 204, 395-401. https://doi.org/10.1016/j.compstruct.2018.07.124.
  10. Lee, W.J., Seo, B.H., Hong, S.C., Won, M.S. and Lee, J.R. (2019), "Real world application of angular scan pulse-echo ultrasonic propagation imager for damage tolerance evaluation of fullscale composite fuselage", Struct. Health Monit., 18(5-6), 1943-1952. https://doi.org/10.1177/1475921719831370.
  11. Panwar, R. and Lee, J.R. (2018), "Performance and nondestructive evaluation methods of airborne radome and stealth structures", Meas. Sci. Technol., 29(6), 062001. https://doi.org/10.1088/1361-6501/aaa8aa.
  12. Petcher, P.A. and Dixon, S. (2017), "Mode mixing in shear horizontal ultrasonic guided waves", Nondestruct. Test. Evaluation, 32(2), 113-132. https://doi.org/10.1080/10589759.2016.1184268.
  13. Rose, J. (2014), Ultrasonic Guided Waves in Solid Media, Cambridge U Press, New York, USA.
  14. Schmerr Jr, L.W. (2016), Fundamentals of Ultrasonic Nondestructive Evaluation, Springer, Switzerland.
  15. Schrapp, M., Scharrer, T., Goldammer, M., Rupitsch, S.J., Sutor, A., Ermert, H. and Lerch, R. (2013), "Artifact reduction in nondestructive testing by means of complementary data fusion of xray computed tomography and ultrasonic pulse-echo testing", Meas. Sci. Technol., 24(12), 125403. https://doi.org/10.1088/0957-0233/24/12/125403.
  16. Scruby, C.B. and Drain, L.E. (1990), Laser Ultrasonics-Techniques and Applications, CRC Press, New York, USA.
  17. Sohn, Y. and Krishnaswamy, S. (2004), "Interaction of a scanning laser-generated ultrasonic line source with a surface breaking flaw", J. Acous. Soc. Am., 115(1), 172-181. https://doi.org/10.1121/1.1630997.
  18. Thai, M.T., Ahmed, H., Hong, S.C., Lee, J.R. and Ihn, J.B. (2019), "Broadband laser ultrasonic excitation and multi-band sensing for hierarchical automatic damage visualization", Int. J. Aeronaut. Space Sci., 20(4), 913-932. https://doi.org/10.1007/s42405-019-00210-4.
  19. White, R.M. (1963), "Generation of elastic waves by transient surface heating", J. Appl. Phys., 34, 3559-3567. https://doi.org/10.1063/1.1729258.
  20. Zhang, H., Xu, C. and Xiao, D. (2018), "Crack assessment of wheel hubs via an ultrasonic transducer and industrial robot", Sens. Transducers, 18(12), 4336. https://doi.org/10.3390/s18124336.
  21. Zhang, K., Li, S. and Zhou, Z. (2019), "Detection of disbonds in multi-layer bonded structures using the laser ultrasonic pulseecho mode", Ultrasonics, 94, 411-418. https://doi.org/10.1016/j.ultras.2018.06.005.