DOI QR코드

DOI QR Code

Development of Tomograph Technique for Evaluating Thickness Reduction using Noncontact Ultrasonic Sensor Network

두께감육 평가를 위한 비접촉식 초음파 센서 네트워크를 이용한 토모그래프 기술 개발

  • Lee, J.M. (Graduate School of Energy & Environment, Seoul National Univ. of Science & Technology) ;
  • Kim, Y.K. (Technology R&D Institute, KEPCO Plant Service & Engineering) ;
  • Park, I.K. (Dept. of Mechanical & Automotive Engineering, Seoul National Univ. of Science & Technology)
  • Received : 2013.08.08
  • Accepted : 2013.12.28
  • Published : 2014.02.15

Abstract

This paper describes a tomographic imaging technique for evaluating the thickness reduction of a plate-like structure using a noncontact sensor network based on an electromagnetic acoustic transducer that generates shear horizontal plate waves. Because this technique is based on the effect of mode cutoff and time of flight of guided waves caused by a change in thickness, the tomographic image provides information on the presence of defects in the structure. To verify the performance of the method, artificial defects with various thickness reduction ratios were machined in an aluminum plate, and the tomographic imaging results are reported. The results show that the generated tomographic image displays the thickness reductions and can identify their locations. Therefore, the proposed technique has good potential as a tool for health monitoring of the integrity of plate-like structures.

Keywords

References

  1. Rose, J. L., 1995, Recent advances in guided wave NDE, Proc. 1994 IEEE Ultrason. Symp., 761-770.
  2. Cho, Y. H., 2001, Understanding and Application of Ultrasonic Guided Waves, Journal of the KSNT 21:4 446-460.
  3. Park, I. K., Kim, Y. K., Kim, H. M., Song, W. J., Cho, Y. S., 2006, Long Range Ultrasonic Guided Wave Technique for Inspection of Pipes, Key Engineering Materials 321-323 799-803. https://doi.org/10.4028/www.scientific.net/KEM.321-323.799
  4. Tuzzeo, D., Lanza di Scalea, F., 2001, Noncontact Air-Coupled Guided Wave Ultrasonics for Detection of Thinning Defects in Aluminum Plates, Res. Nondestructive Evaluation 13:2 61-77. https://doi.org/10.1080/09349840109409687
  5. Luo, W., Rose, J. L., 2003, Guided wave thickness measurement with EMATs, Insight 45:11 1-5.
  6. Hirao, M., Ogi, H., 2003, EMATs for Science and Industry Noncontacting Ultrasonic Measurements, Kluwer Academic Publisher, USA.
  7. Gao, H., Rose, J. L., 2006, Ultrasonic Sensor Placement Optimization in Structural Health Monitoring Using Evolutionary Strategy, Rev. Progress in QNDE 25 1687-1693.
  8. Gao, H., Guers, M. J., Rose, J. L., Zhao, G., Kwan, C., 2006, Ultrasonic Guided Wave Annular Array Transducers for Structural Health Monitoring, Rev. Progress in QNDE 25 1680-1686.
  9. Park, I. K., Kim, Y. K., 2010, Mode Characteristics Analysis of the SH-EMAT Waves for Evaluating the Thickness Reduction, Journal of the KSMTE 19:2 198-203.
  10. Kim, Y. K., Park, I. K., 2010, Evaluation of Thickness Reduction in an Aluminum sheet Using SH-EMAT, Journal of the KWS 28:2 68-72.