Acoustic properties of the deep screened sonar radiator
DOI:
https://doi.org/10.34169/2414-0651.2021.2(30).66-72Keywords:
cylindrical piezoceramic radiator, rigid screen, acoustic fieldAbstract
The necessity of application of rigid type acoustic screens in hydroacoustic stations with deep-water antennas of variable depth is substantiated. By the method of coupled fields in multiconnected regions for antennas formed from cylindrical piezoceramic
radiators with rigid screens in the form of open rings of finite thickness, analytical expressions for calculations of acoustic fields of such radiators are obtained. In the solution of the problem “pass-through” radiation shielded transducer included interactions: electrical, mechanical and acoustic fields in the conversion of energy; acoustic fields of the shell and screen during energy generation; processes of energy conversion and formation. Quantitative results of calculations of acoustic fields on the received expression are resulted.
Downloads
References
Koriakin, Y. A., Smirnov, S. A. & Yakovlev, H. V. (2005), “Korabelnaia gidroakusticheskaia tekhnika: sostoianie i aktualnye problemy” [Ship sonar technology: state and current problems], Nauka, SPb. 410 p.
Derepa, A. V., Leiko, A. G. & Melenko, Yu. Ya. (2016), “Kompleksnaia sistema «gidroakusticheskoe vooruzhenie – nadvodnyi korabl». Problemnye aspekty sistemy «gidroakusticheskaya stantsiia – nadvodnyi korabl» s antennami peremennoi glubiny” [Integrated system “hydroacoustic armament – surface ship”. Problematic aspects of the system “hydroacoustic station – surface ship” with antennas of variable depth], D. Buraho Publ. house. K. 400 p.
Derepa, A. V., Leiko, A. G. & Melenko, Yu. Ya. (2014), “Kompleksnaia sistema «gidroakusticheskoe vooruzhenie – nadvodnyi korabl». Problemnye aspekty sistemy “gidroakusticheskaia stantsiia – nadvodnyi korabl» s antennami, razmeshchennymi v korpuse korablia” [Integrated system “hydroacoustic armament – surface ship”. Problematic aspects of the system “hydroacoustic station – |surface ship” with antennas located in the ship’s hull], D. Buraho Publ. house. K. 426 p.
Grinchenko, V. T., Vovk, I. V. & Matsypura, V. T. (1986), “Volnovye zadachi rasseyaniia zvuka na uprugikh obolochkakh” [Wave problems of sound scattering by elastic shells], Naukova dumka. K. 240 p.
Grinchenko, V. T., Vovk, I. V. & Matsypura, V. T. (2018), Acoustic Wave Problems. Begell House. 439 p.
Shenderov, E. L. (1972), “Volnovye zadachi gidroakustiki” [Volnovyye zadachi gidroakustiki], Sudostroenie. L. 374 p.
Gusak, Z. T., Leiko, O. G., Derepa, A. V. & Didkovskyi, V. S. (2020), “Fizicheskie polia priemoizluchayushchikh sistem pyezokeramicheskikh elektroakusticheskikh preobrazovatelei. T. 1. Tsilindricheskie preobrazovateli s vneshnim akusticheskim ekranom” [Physical fie lds of receiving-emitting systems of piezoceramic electroacoustic transducers. Vol. 1. Cylindrical transducers with an external acoustic screen], D. Buraho Publ. house. K. 274 p.
Grinchenko, V. T., Ulitko, A. F. & Shulga, N. A. (1989), “Mekhanika sviazannykh polei v elementakh konstruktsii. T. 5. Elektrouprugost” [The mechanics of related fie lds in structural members. Vol. 5. Electroelasticity], Naukova dumka. K. 280 p.
Korzhyk, A. V., Kuroiedova, T. S. & Philippova, N. Y. (2013). The analysis of electromechanical characteristics of radiating cylindrical piezoceramic transducer with surface coated by solid electrodes located in the closed ring layer. Electronics and Communications. Vol. 18 (1). Pp. 102—109. https://doi.org/10.20535/2312-1807.2013.18.1.189189. DOI: https://doi.org/10.20535/2312-1807.2013.18.1.189189
Didkovsky, V. S., Naida, S. A., Drozdenko, O. I. & Drozdenko, K. S. (2020). Experimental researching of biological object noninvasive passive acoustothermomentry features. Eastern-European J. of Enterprise Technologies. Vol. 1 (5 (103)). Pp. 6—12. https://doi.org/10.15587/1729-4061.2020.192594. DOI: https://doi.org/10.15587/1729-4061.2020.192594
Korzhyk, O. V. (2013), The impedance characteristics of 0-mode wave-stratum transducer. Electronics and Communications, Vol. 18 (3). Pp. 49—55. https://doi.org/10.20535/2312-1807.2013.18.3.158499. DOI: https://doi.org/10.20535/2312-1807.2013.18.3.158499
Didkovskiy, V. S., Naida, S. A. & Zaets, V. P. (2019). Experimental study into the Helmholtz resonators resonance properties over a broad frequency band. Eastern-European J. of Enterprise Technologies. Vol. 1. |No 5(97). Pp. 34—39.https://doi.org/10.15587/1729-4061.2019.155417. DOI: https://doi.org/10.15587/1729-4061.2019.155417
Pozdniakova, O., Derepa, A., Lastivka, I., Leiko, A., Drozdenko, O. & Osadcha, A. (2021). Vypromіnuvannia zvuku cylindrychnym piezokeramichnym gidroakustychnym peretvoruvachem z dynamichno kerovanymy parametramy [Sound radiation by cylindrical piezoceramic hydroacoustic transducer with dynamically controlled parameters], Weapons and Military Equipment. No 1(29). Рp. 64—70. https://doi.org/1034169/2414-0651.2021.1(29).64-70.
Starovoit, Y. I. & Leiko, O. H. (2017). Mechanical fi elds of the piezoceramic radiator of strength design situated near acoustical baffl e. Microsystems, Electronics and Acoustics. Vol. 22. No 6. Pp. 48—55. https://doi.org/10.20535/2523-4455.2017.22.6.99700. DOI: https://doi.org/10.20535/2523-4455.2017.22.6.99700
Starovoit, Y. I., Kurdiuk, S. V. & Leiko, O. H. (2018). Physical fi elds of hydroacoustic sonar arrays with baffle and cylindrical piezoceramic radiators with radial polarization. Microsystems, Electronics and Acoustics. Vol. 23. No 1. Pp. 30—36. https://doi.org/10.20535/2523-4455.2018.23.1.99725. DOI: https://doi.org/10.20535/2523-4455.2018.23.1.99725
Shyshkova, K. A. & Leiko, O. H. (2019). Radiation of Sound by a Cylindrical Piezoceramic Converter with Radial Polarization and a Rigid Screen. Microsystems, Electronics and Acoustics. Vol. 24. No 4. Pp. 68—73. https://doi.org/10.20535/2523-455.2019.24.4.184027. DOI: https://doi.org/10.20535/2523-4455.2019.24.4.184027
