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Impulse Excitation in a Watertight Steel Circular Cylindrical Shell and Influence of Structural Configuration on Underwater Radiated Noise

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This study used experimental measurements and the finite-element method (FEM) simulations to investigate transient underwater radiated noise induced by the impulse excitation of water surrounding a watertight steel-structured circular cylindrical shell submerged in the 176 × 8 × 4 m towing tank. The excitation was caused by dropping an iron block onto a structural bracket in the shell to generate structural vibration. The experimental results were found to be consistent with the FEM results, with the difference between the experimental and simulated sound pressure levels being less than 3 dB. Moreover, it was determined that the structural vibration also generated airborne noise in the cylindrical shell, but this contributed much less than the impulse excitation to the induction of underwater radiated noise. Finally, analysis of the sound field of the underwater noise radiation showed that it was influenced by the wall thickness of the watertight steel cylindrical shell and that of the reinforced bracket seat structure. In particular, the structural reinforcement position proved to be the diffusion breakpoint of the underwater sound radiation. This demonstrates that compared with the studied structure, a thicker and more complex reinforced structure will transmit less or incomplete sound radiation into water.
Rocznik
Strony
509--521
Opis fizyczny
Bibliogr. 20 poz., fot., rys., tab., wykr.
Twórcy
autor
  • National Cheng Kung University Taiwan, Province of China
autor
  • National Cheng Kung University Taiwan, Province of China
autor
  • National Cheng Kung University Taiwan, Province of China
Bibliografia
  • 1. ABAQUS (2014), Abaqus Analysis User’s Guide 6.14: Acoustic, Shock, and Coupled Acoustic-Structural Analysis, Volume II, Part III, Chapter 6.9.1.
  • 2. Alvarez-Aramberri J., Pardo D., Barucq H. (2014), Automatically adapted perfectly matched layers for problems with high contrast materials properties, [in:] 14th International Conference on Computational Science, 29: 970-979, doi: 10.1016/j.procs.2014.05.087.
  • 3. Etter P.C. (2018), Noise I: Observations and physical models, [in:] Underwater Acoustic Modeling and Simulation, 5th ed., pp. 291-294, CRC Press.
  • 4. Junger M.C., Feit D. (1986), Sound radiation by shells at low and middle frequencies, [in:] Sound, Structures, and Their Interaction, pp. 321-365, MIT Press, Cambridge.
  • 5. Leader J., Pan J., Dylejko P., Matthews D. (2013), Experimental investigation into sound and vibration of a torpedo-shaped structure under axial force excitation, The Journal of the Acoustical Society of America, 133(5): 3517, doi: 10.1121/1.4806301.
  • 6. Lin C., Wang J., Qu Y., Zhang Z., Hua H. (2016), Numerical and experimental investigation on vibroacoustic response of a shaft-hull system, Engineering Analysis with Boundary Elements, 71: 129-139, doi: 10.1016/j.enganabound.2016.07.016.
  • 7. Matthew H. (2004), The measurement and behavior of vibration, [in:] Vehicle Refinement: Controlling Noise and Vibration in Road Vehicles, Cranfield University, pp. 234-268, Elsevier, UK.
  • 8. Qian D.-J., Miao X.-H., Wang X.-R. (2012), Sound radiation of underwater structure based on coupled acoustic-structural analysis with ABAQUS, Applied Mechanics and Materials, 226-228: 2249-2252, doi: 10.4028/www.scientific.net/AMM.226-228.2249.
  • 9. Rawat A., Matsagar V., Nagpal A.K. (2015), Finite element simulation of cylindrical liquid storage tank under tri-directional components of earthquake, Journal of Structural Engineering, 42(1): 28-39, doi: 10.3850/978-981-09-1139-3_089.
  • 10. Rugonyi S., Bathe K.J. (2001), On finite element analysis of fluid flows fully coupled with structural interactions, Computer Modeling in Engineering and Sciences, 2(2): 195-212, doi: 10.3970/cmes.2001.002.195.
  • 11. Sacks Z.S., Kingsland D.M., Lee R., Lee J.-F. (1995), A perfectly matched anisotropic absorber for use as an absorbing boundary condition, [in:] IEEE transactions on Antennas and Propagation, 43(22): 1460-1463, doi: 10.1109/8.477075.
  • 12. Tong Z., Zhang Y., Zhang Z., Hua H. (2007), Dynamic behavior and sound transmission analysis of a fluid-structure coupled system using the direct-BEM/FEM, Journal of Sound and Vibration, 299(3): 645-655, doi: 10.1016/j.jsv.2006.06.063.
  • 13. Wang W.-H., Liou J.-H., Sutton R., Dobson B. (2000), Machine vibration induced underwater acoustic radiation, Journal of Marine Science and Technology, 8(1): 30-40, doi: 10.51400/2709-6998.2451.
  • 14. Wawrzynowicz A., Krzaczek M., Tejchman J. (2014), Experiments and FE analyses on airborne sound properties of composite structural insulated panels, Archives of Acoustics, 39(3): 351-364, doi: 10.2478/aoa-2014-0040.
  • 15. Wu C.-I., Too G.-P. (2021), On underwater sound radiation in a towing tank induced by continuous machine vibration in a steel circular cylinder, Journal of Mechanics, 37: 597-608, doi: 10.1093/jom/ufab026.
  • 16. Wu C.-I., Too G.-P., Wu B.-H. (2022), The boundary acoustic impedance effects of a towing tank underwater sound radiation induced by a steel cylinder continuous vibration, Applied Acoustics, 201: 109101, doi: 10.1016/j.apacoust.2022.109101.
  • 17. Wu H.-T., Chen P.-T. (2017), Application of coupled FEM/BEM on the analysis of underwater radiated noise of a surface ship induced by hull vibrations, Journal of Marine Science and Technology, 25(2): 196-204, doi: 10.6119/JMST-016-1118-2.
  • 18. Wu X.-F. (1989), Faster calculations of sound radiation from vibrating cylinders using variational formulations, Journal of Vibration, Acoustics, Stress, and Reliability in Design, 111(1): 101-107, doi: 10.1115/1.3269803.
  • 19. Yoshikawa S. (1993), Fluid-structure coupling by the entrained fluid in submerged concentric double-shell vibration, The Journal of the Acoustical Society of Japan (E), 14(2): 99-111, doi: 10.1250/ast.14.99.
  • 20. Zhang Y., Lou J., Yu X. (2016), Underwater vibration and acoustic radiation calculation of double cylindrical shell by three-dimensional sono-elasticity of ships, Journal of Vibroengineering, 7: 18-24, https://www.extrica.com/article/17328.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-8cc824ee-bdce-41f3-ac91-5c57c702a9fd
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