Design of a Low Frequency, Wideband Tonpilz Transducer for Sonar Applications

Authors

  • M.R. Subash Chandrabose Cochin University of Science and Technology
  • N. Biju Cochin University of Science and Technology

DOI:

https://doi.org/10.3849/aimt.01971

Keywords:

Tonpilz transducer, sonar, underwater transducer, low-frequency, finite element model

Abstract

Tonpilz transducers are the most widely used transducers for sonar applications due to their good acoustic performance, simple construction, ease of array formation and long service life. However, the large size and mass required for low-frequency transducers limit their typical use to frequencies above 2 kHz. Another limitation is its low bandwidth. In this paper, an attempt is made to design a transducer with a resonance frequency of 1 kHz and a source level of 190 dB or more with a useful bandwidth of more than two octaves. The finite element method is used to model the transducer and to study the effect of important parameters on Transmitting Voltage Response (TVR). Based on the study an optimum design is proposed. The studies reveal that the dimensions of the piezoceramic stack and head mass significantly affect TVR.

 

References

SHERMAN, C. and J. BUTLER. Transducers and Arrays for Underwater Sound. New York: Springer, 2007. ISBN 978-0387-32940-6.

ROUFFAUD, R., C. GRANGER, A.-C. HLADKY-HENNION, M.P. THI and F. LEVASSORT. Tonpilz Underwater Acoustic Transducer Integrating Lead-Free Piezoelectric Material. International Congress on Ultrasonics, 2015, 70, pp. 997-1001. https://doi.org/10.1016/j.phpro.2015.08.208

STANSFIELD, D. Underwater Electroacoustic Transducers. Bath: Bath University Press and Institute of Acoustics, 1990. ISBN 0-86197-082-9.

DHILSHA, R., P.M. RAJESHWARI and S. ZACHARIA. Development of Wideband Underwater Acoustic Transducers. Current Science, 2020, 118(11), pp. 1702-1706. https://doi.org/10.18520/cs/v118/i11/1702-1706

MOSCAA, F., G. MATTE and T. SHIMURA. Low-Frequency Source for Very Long-Range Underwater Communication. Journal of Acoustical Society of America, 2013, 133(1), pp. 61-67. https://doi.org/10.1121/1.4773199

INOUE, T., T. NADA, T. TSUCHIYA, T. NAKANISHI, T. MIYAMA, S. TAKAHASHI and M. KONNO. Tonpilz Piezoelectric Transducers with Acoustic Matching Plates for Underwater Colour Image Transmission. In: H. SHIMIZU, N. CHUBACHI and J. KUSHIBIKI, eds. Acoustical Imaging. Boston: Springer, 1989, pp. 597-607. ISBN 1-4612-8084-2.

CROMBRUGGE, V.M. and W. THOMPSON, Jr. Optimization of the Transmitting Characteristics of a Tonpilz-Type Transducer by Proper Choice of Impedance Matching Layers. Journal of Acoustical Society of America, 1985, 77, pp. 747-752. https://doi.org/10.1121/1.392344

HYUNKI, K. and R. YONGRAE. Design, and Fabrication of a Wideband Tonpilz Transducer with a Void Head Mass. Sensors and Actuators A: Physical, 2016, 239(1), pp. 137-143. https://doi.org/10.1016/j.sna.2016.01.029

RODRIGO, G.C. and M. REDWOOD. Analysis and Design of Piezoelectric Sonar Transducers [Thesis] [online]. Queen Mary College, London, 1970. [viewed 2024-10-12]. Available from: https://qmro.qmul.ac.uk/xmlui/bitstream/handle/123456789/1712/RODRIGOAnalysisAnd1970.pdf?sequence=1

EBENEZER, D.D. and M.R. SUBASHCHANDRABOSE. Wideband Tonpilz Transducers. In: Proceedings of ICONS 2002 International Conference on Sonar-Sensors and Systems (2). Cochin: Allied Publishers, 2002, pp. 733-740. ISBN 81-7764-381-9.

THOMPSON, S.C., M.P. JOHNSON, E.A. MCLAUGHLIN and J.F. LINDBERG. Performance, and Recent Developments with Doubly Resonant Wideband Transducers. In: M.D. McCOLLUM, B.F. HAMONIC and O.B. WILSON, eds. Transducers for Sonics and Ultrasonics. Orlando: Technomic Publishing, 1992, pp. 239-249. ISBN 978-0-87762-993-1.

BUTLER, S.C. Development of a High-Power Broadband Doubly Resonant Transducer (DRT). In: UDT 2001 Conference Proceedings, 2001, pp. 5-30.

SEONGHUN, P., M.H. AFZAL, Y. LIM, S. LEE and Y. ROH. Design of a Wideband Tonpilz Transducer Comprising Non-Uniform Piezoceramic Stacks with Equivalent Circuits. Sensors, 2021, 21(8), 2680. https://doi.org/10.3390/s21082680

BUTLER, J.L., J.R. CIPOLLA and W.D. BROWN. Radiating Head Flexure and its Effect on Transducer Performance. Journal of Acoustical Society of America, 1981, 70, pp. 500-503. https://doi.org/10.1121/1.386794

QINGSHAN, Y. and J.F. BJØRNØ. Broadband Tonpilz Underwater Acoustic Transducers Based on Multimode Optimization. IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control, 1997, 44(5), pp. 1060-1066. https://doi.org/10.1109/58.655631

WOOLLETT, R.S. Basic Problems Caused by Depth and Size Constraints in Low-Frequency Underwater Transducers. Journal of Acoustical Society of America, 1980, 68, pp. 1031-1037. https://doi.org/10.1121/1.384985

POLAT, K., M. SANSALB, I. TATARB, C. DURANC and S. ORHANA. Vibro-Acoustic Design, Manufacturing and Characterization of a Tonpilz-type Transducer. Applied Acoustics, 2019, 150, pp. 27-35. https://doi.org/10.1016/j.apacoust.2019.02.003

COMSOL Multiphysics Reference Manual [online]. 2023 [viewed 2024-10-12]. Available from: https://doc.comsol.com/6.2/doc/com.comsol.help.comsol/COMSOL_ReferenceManual.pdf

KINSLER, L.E., A.R. FREY, A.B. COPPENS and J.V. SANDERS. Fundamentals of Acoustics. New York: Wiley, 2000. ISBN 0-471-84789-5.

BUTLER, S.C. Properties of Transducers: Underwater Sound Sources and Receivers. NUWC-NPT Technical Document No. 12289 [online]. 2018, pp. 10-12. [viewed 2024-10-12]. Available from: https://apps.dtic.mil/sti/tr/pdf/AD1068326.pdf

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Published

17-04-2025

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Original research article

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How to Cite

Subash Chandrabose , M., & Biju, N. (2025). Design of a Low Frequency, Wideband Tonpilz Transducer for Sonar Applications. Advances in Military Technology, 20(1), 95-105. https://doi.org/10.3849/aimt.01971

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