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Design and Development of a Broadband Ultrasonic Transducer Operating over the Frequency Range of 40 to 75 kHz

40-75 kHz의 주파수 범위에서 동작하는 광대역 초음파 변환기의 설계 및 개발

  • Lee, Dae-Jae (Division of Marine Production System Management, Pukyong National University) ;
  • Kwak, Min Son (Shin-A Corporation) ;
  • Kang, Hee-Young (Hydrographic Survey Division, Korea Hydrographic and Oceanographic Administration)
  • 이대재 (부경대학교 해양생산시스템관리학부) ;
  • 곽민선 (신아종합) ;
  • 강희영 (국립해양조사원 수로측량과)
  • Received : 2014.03.03
  • Accepted : 2014.04.16
  • Published : 2014.06.30

Abstract

The objective of this study was to design and develop a broadband ultrasonic transducer that has both wide bandwidth and high sensitivity to measure broadband echoes related to identifying fish species. A broadband ultrasonic transducer providing a nearly flat transmitting response band of 40.2-75.5 kHz with a -12 dB bandwidth of 35.3 kHz was achieved by integrating 12 tonpilz transducer elements operating at different resonance frequencies. The average transmitting voltage response, receiving sensitivity, and figure of merit values in this frequency band were 168.4 dB (re $1{\mu}Pa/V$ at 1 m), -196.8 dB (re $1V/{\mu}Pa$), and -28.4 dB, respectively. The results suggest that bandwidth and sensitivity can be widened and improved by adjusting the array pattern and the structure of tonpilz transducer elements.

Keywords

References

  1. Airmar technology corporation. 2013. Technical data catalog, Milford, NH, USA, 274-325.
  2. Chen YC. 2010. Acoustic transmission line model for ultrasonic transducers for wide-bandwidth application. Acta Mechanica Solida Sinica 23, 124-134. https://doi.org/10.1016/S0894-9166(10)60014-6
  3. Feng F, Shen J and Den J. 2006. A 2D equivalent circuit of piezelectric ceramic ring for transducer design. Ultrasonics 44, 723-726. https://doi.org/10.1016/j.ultras.2006.05.083
  4. Hawkins DW and Gough PT. 1996. Multiresonance design of a Tonpilz transducer using the finite element method. IEEE Trans Ultrason Ferroelect Freq Contr 40, 782-789.
  5. Hughes WJ and Zipparo MJ. 1969. Computer modeling of ultrasonic piezoelectric transducers. Technical report TR 96-007, Applied Research Lab, The Pennsylvania State Univ, Pennsylvania, U.S.A., 1-116.
  6. Hughes WJ. 1998. Transducer, underwater acoustic. Encyclopedia of applied physics 22, 67-84.
  7. Ilua A, Carotenuto R and Pappalardo M. 2002. An approximated 3-D model of the Langevin transducer and its experimental validation. J Acoust Soc Am 111, 2675-2680. https://doi.org/10.1121/1.1476684
  8. Kachanov VK and Sokolov IV. 2007. Requirement for choosing the parameters of broadband transducers for testing objects with high damping of ultrasonic signals. Russian J Nondestr Test 43, 743-754. http://dx.doi.org/10.1134/S1061830907110058.
  9. Kachanov VK, Sokolov IV, Konov MM, Timofeev DV and Sinitsyn AA. 2010. Development of a broadband low-frequency mosaic ultrasonic piezoelectric transducer with a limited aperture. Russian J Nondestr Test 46, 645-650. http://dx.doi.org/10.1134/S1061830910090044.
  10. Kara H, Ramesh R, Stevens R and Browen CR. 2003. Porous PZT ceramic for receiving transducers. IEEE Trans Ultrason Ferroelect Freq Contr 50, 289-296. https://doi.org/10.1109/TUFFC.2003.1193622
  11. Kim JW, Kim HY and Roh YG. 2013. Design and fabrication of multi-mode wideband Tonpilz transducers. J Acoust Soc Kor 32, 191-198. http://dx.doi.org/10.7776/ASK.2013.32.3.191.
  12. Lee DJ and Shin HI. 2001. Development of a split beam transducer for measuring fish size distribution. Bull Korean Soc Fish Tech 37, 196-213.
  13. Lee DJ and Lee WS. 2010. Design, fabrication and performance characteristics of a 50kHz Tonpilz type transducer with a half-wavelength diameter. J Kor Soc Fish Tech 46, 173-183. http://dx.doi.org/10.3796/KSFT.2010.46.2.173.
  14. Lee DJ and Lee WS. 2011. Development of split-beam acoustic transducer for a 50 kHz fish sizing echo sounder. Kor J Fish Aquat Sci 44, 413-422. http://dx.doi.org/10.5657/KFAS.2011.0413.
  15. Lee DJ. 2011. Estimation of angular location and directivity compensation of split-beam acoustic transducer for a 50 kHz fish sizing echo sounder. Kor J Fish Aquat Sci 44, 423-430. http://dx.doi.org/10.5657/KFAS. 2011.0423.
  16. Lin S. 1994. The three-dimensional equivalent circuit and natural frequencies of rectangular piezoelectric ceramic resonators. J Acoust Soc Am 96, 1620-1626. https://doi.org/10.1121/1.410241
  17. Lin S. 2005. Analysis of the sandwich piezoelectric ultrasonic transducer in coupled vibration. J Acoust Soc Am 117, 653-661. https://doi.org/10.1121/1.1849960
  18. Lin S and Hua T. 2008. Study on the sandwich piezoelectric ceramic ultrasonic transducer in thickness vibration. Smart Mater Struct 17, 1-9.
  19. Mancic D. and Radmanovic M. 2002. piezoceramic ring loaded on the face: a three-demensional approach. Electro J Tech Acoust 2, 1-7.
  20. Mancic D and Radmanovic M. 2004. Design of ultrasonic transducers by means of the apparent elasticity method. Working and Living Environmental Protection 2, 293-300.
  21. Mancic D, Radmanovic M, Petrusic Z and Stancic G. 2008. Influence of ultrasonic transducer acoustic impedances and dimensions on its input electrical impedance. Working and Living Environmental Protection 5, 59-72.
  22. Mancic D and Stancic G. 2010. New three-dimensional matrix modes of the ultrasonic sandwich transducers. J Sandwich Struc Mater 12, 63-80. http://dx.doi.org/10.1177/1099636209103511.
  23. Radmanovic M and Mancic D. 2004. Design and modeling of the power ultrasonic transducers. MP Interconsulting, Le Locle, Switzerland, 8-161.
  24. Rajapan D. 2002. Performance of a low-frequency, multi-resonant broadband Tonpilz transducer. J Acoust Soc Am 111, 1692-1694. https://doi.org/10.1121/1.1456927
  25. Saijyou K and Okuyama T. 2010. Design optimization of wideband Tonpilz piezoelectric transducer with a bending piezoelectric disk on the radiation surface. J Acoust Soc Am 127, 2836-2846. https://doi.org/10.1121/1.3377061
  26. Saijyou K and Okuyama T. 2011. Estimation of frequency characteristics of the Tonpilz piezoelectric transducer with a bending piezoelectric disk. Applied Acoustics 72, 915-922. https://doi.org/10.1016/j.apacoust.2011.05.015
  27. Yao Q and Bjorno L. 1997. Broadband Tonpilz underwater acoustic transducers based on multimode optimation. IEEE Trans Ultrason Ferroelect Freq Contr 44, 1060-1066 https://doi.org/10.1109/58.655631

Cited by

  1. Bandwidth Enhancement of a Broadband Ultrasonic Mosaic Transducer using 48 Tonpilz Transducer Elements with 12 Resonance Frequencies vol.47, pp.3, 2014, https://doi.org/10.5657/KFAS.2014.0302