全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

Study of an Omnidirectional Guide Wave Sensor Using an EMAT

DOI: 10.4236/jst.2017.72002, PP. 25-38

Keywords: EMAT, Surface Wave, Omnidirectional Detection, Inspection

Full-Text   Cite this paper   Add to My Lib

Abstract:

Nondestructive inspection of structures is important for ensuring the safety of the social infrastructure. Among them, the ultrasonic inspection method plays a role as a major technology. However, when examining a huge structure, the inspection time tends to be very long. Therefore, a system for transmitting and receiving ultrasonic waves in all directions from the ultrasonic sensor has been constructed. Several types of ultrasonic sensors using this concept have already been devised, but since the ultrasonic energy is dispersed in all directions, there is a problem that a sufficient detection performance cannot be ensured, especially when the thickness of the material to be inspected becomes thick. Therefore, we developed a highly sensitive omnidirectional ultrasonic sensor utilizing the resonance phenomenon of the ultrasonic wave propa-gating in the thickness direction. The omnidirectional ultrasonic system also consists of an electromagnetic ultrasonic transducer (EMAT) using a circular magnet. It is possible to inspect the plate thickness from 0.3 mm to 10 mm and the inspection range of the diameter of 300 mm around the sensor by the developed system. It is indicated that the developed system allows the high-speed inspection of huge structures.

References

[1]  Peter, C. and David, A. (1996) The Use of Lamb Waves for the Long Range Inspection of Large Structures. Ultrasonics, 34, 287-290.
https://doi.org/10.1016/0041-624X(96)00024-8
[2]  Cawley, P. (1994) The Rapid Non-Destructive Inspection of Large Composite Structures. Composites, 25, 351-357.
https://doi.org/10.1016/S0010-4361(94)80005-7
[3]  Thompson, R.B. (1997) Experiments in the Use of Guided Ultrasonic Waves to Scan Structures. Review of Progress in Quantitive NDE, 16A, 121-128.
[4]  Alleyne, D.N., Pavlakovic, B., Lowe, M.J.S. and Cawley, P. (2001) Rapid Long-Range Inspection of Chemical Plant Pipework Using Guided Waves. Insight, 43, 93-96.
https://doi.org/10.1063/1.1373757
[5]  Wilcox, P., Pavlakovic, B., Evans, M., Vine, K., Cawley, P., Lowe, M. and Alleyne, D. (2003) Long Range Inspection of Rail Using Guided Waves. Review of Progress in Quantitative Nondestructive Evaluation, 22A, 236-243.
https://doi.org/10.1063/1.1570142
[6]  Ball, D.F. and Shewring, D. (1973) Some Problems in the Use of Lamb Waves for the Inspection of Cold-Rolled Steel Sheet and Coil. Nondestructive Testing, 6, 138-145.
https://doi.org/10.1016/0029-1021(73)90015-7
[7]  Malyarenko, E.V. and Hinders, M.K. (2000) Fan Beam and Double Crosshole Lamb Wave Tomography for Mapping Flaws in Aging Aircraft Structures. The Journal of the Acoustical Society of America, 108, 1631-1639.
https://doi.org/10.1121/1.1289663
[8]  Safaeinili, A., Lobkis, O.I. and Chimenti, D.E. (1996) Quantitative Materials Characterization Using Air-Coupled Leaky Lamb Waves. Ultrasonics, 34, 393-396.
https://doi.org/10.1016/0041-624X(96)00056-X
[9]  Chimenti, D.E. and Song, J. (2007) Performance of Spherically Focused Air Coupled Ultrasonic Transducers. Review of Progress in Quantitative Nondestructive Evaluation, 26, 862-869.
https://doi.org/10.1063/1.2718059
[10]  Miao, H.C. and Li, F.X. (2015) Realization of Face-Shear Piezoelectric Coefficient d(36) in PZT Ceramics via Ferroelastic Domain Engineering. Applied Physics Letters, 107, 122902.
https://doi.org/10.1063/1.4931685
[11]  Miao, H.C., Chen, X., Cai, H.R. and Li, F.X. (2015) Comparative Face-Shear Piezoelectric Properties of Soft and Hard PZT Ceramics. Journal of Applied Physics, 118, Article ID: 214102.
https://doi.org/10.1063/1.4936781
[12]  Belanger, P. and Boivin, G. (2016) Development of a Low Frequency Omnidirectional Piezoelectric Share Horizontal Wave Transducer. Smart Materials and Structures, 25, Article ID: 045024.
https://doi.org/10.1088/0964-1726/25/4/045024
[13]  Songling, H., Zheng, W., Wei, Z. and Shen, W. (2014) A New Omni-Directional EMAT for Ultrasonic Lamb Wave Tomography Imaging of Metallic Plate Defects. Sensors, 14, 3458-3476.
https://doi.org/10.3390/s140203458
[14]  Paul, D.W. (2003) Omni-Directional Guided Wave Transducer Arrays for the Rapid Inspection of Large Areas of Plate Structures. IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control, 50, 699-709.
[15]  Wilcox, P.D., Lowe, M. and Cawley, P. (2005) Omnidirectional Guided Wave Inspection of Large Metallic Plate Structures Using an EMAT Array. IEEE Transactions on Ultrasonics Ferroelectrics and Frequency Control, 52, 653-665.
https://doi.org/10.1109/TUFFC.2005.1428048
[16]  Wilcox, P.D., Lowe, M.J.S. and Cawley, P. (2005) The Excitation and Detection of Lamb Waves with Planar Coil Electromagnetic Acoustic Transducers. IEEE Transactions on Ultrasonic Ferroelectrics and Frequency Control, 52, 2370-2383.
https://doi.org/10.1109/TUFFC.2005.1563281
[17]  Koduru, J.P. and Rose, J.L. (2013) Transducer Arrays for Omnidirectional Guided Wave Mode Control in Plate like Structures. Smart Materials and Structures, 22, Article ID: 015010.
https://doi.org/10.1088/0964-1726/22/1/015010
[18]  Vishnuvardhan, J., Muralidharan, A., Krishnamurthy, C.V. and Balasubramaniam, K. (2009) Structual Health Monitoring of Anisotropic Plate Using Ultrasonic Guided Wave STMR Array Patches. NDT & E International, 42, 193-198.
[19]  Dee, J.K., Kim, H.W. and Kim, Y.Y. (2013) Ominidirectional Lamb Waves by Axisymmetrically-Configured Magnetostrictive Patch Transducer. IEEE Transactions on Ultrasonics Ferroelectrics and Frequency Control, 60, 1928-1931.
https://doi.org/10.1109/TUFFC.2013.2777
[20]  Seung, H.M., Kim, H.W. and Kim, Y.Y. (2013) Development of an Omini-Directional Shear-Horizontal Wave Magnetostrictive Patch Transducer for Plates. Ultrasonics, 53, 1304-1308.
[21]  Seung, H.M., Park, C. and Kim, Y.Y. (2016) An Omnidirectional Shear-Horizontal Guided Wave EMAT for a Metallic Plate. Ultrasonics, 69, 58-66.
[22]  Otani T., Ogi, T. and Hirao, M. (2000) Ultrasonic Attenuation Monitoring of Fatigue Damage in Low Carbon Steels with Electromagnetic Acoustic Resonance (EMAR). Journal of Alloys and Compounds, 310, 440-444.
[23]  Thompson, R.B. (1973) A Model for the Electromagnetic Generation and Detection of Rayleigh and Lamb Wave. IEEE Transactions, SU-20, 340-346.
[24]  Thompson, R.B. (1980) The Relationship between Radiating Body Forces and Equivalent Surface Stresses: Analysis and Application to EMAT Design. Journal of Nondestructive Evaluation, 1, 79-85.
https://doi.org/10.1007/BF00566116
[25]  Koorosh, M., Chris, C., Chris, M., Maciej, J., Anthony, S., Reza, J.S., Adalbert, K. and Marcello, P. (2004) Optimal Design of EMAT Transmitters. NDT & E International, 37, 181-193.
[26]  Hirao, M. and Ogi, H. (2004) Development of EMAT Techniques in EMATS for Science and Industry. Kluwer Academic Publishers, London.
[27]  Yamasaki, H. (1999) Generation and Detection of Longitudinal Wave in Steel Wires by Electromagnetic Acoustic. Transducers, Transactions of the JSME A, 65, 1038-1043.
[28]  Japan Probe Ltd. (2013) Ultrasonic Propagating Simulator SWAN21.
http://www.jp-probe.com/en/product/?ca=18&res_id=1406019676-328879

Full-Text

comments powered by Disqus

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133