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Review of research results concerning the modelling of shipping noise

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The effect of underwater radiated noise (URN) pollution (produced by merchant ships) on marine ecology has become a topic of extreme concern for both the academic community and the general public. This paper summarises some research results and modelling about shipping noise published over several decades, which comprises the research significance of low-frequency ambient noise and shipping noise, shipping noise source levels (SL), empirical models and the measurement standards of shipping noise. In short, we try to present an overall outline of shipping noise and ocean ambient noise for related research.
Rocznik
Tom
Strony
102--115
Opis fizyczny
Bibliogr. 76 poz., rys., tab.
Twórcy
autor
  • Systems Engineering Research Institute, 16 Cuiwei Road, Haidian District, 100036 Beijing, China
autor
  • Systems Engineering Research Institute, 16 Cuiwei Road, Haidian District, 100036 Beijing, China
autor
  • Jiangsu University of Science and Technology, No.2 Mengxi Road, 212003 Zhenjiang, China
autor
  • Jiangsu University of Science and Technology, No.2 Mengxi Road, 212003 Zhenjiang, China
autor
  • Jiangsu University of Science and Technology, No.2 Mengxi Road, 212003 Zhenjiang, China
autor
  • Jiangsu University of Science and Technology, No.2 Mengxi Road, 212003 Zhenjiang, China
Bibliografia
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  • 3. McKenna, D.: Ship sources of ambient noise. IEEE Journal of Oceanic Engineering, 30(2), 257-261, 2005.
  • 4. Chapman, N. R., Price, A.: Low frequency deep ocean ambient noise trend in the Northeast Pacific Ocean. The Journal of the Acoustical Society of America, 129(5), EL161-EL165, 2011.
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  • 8. Lurton. X.: An Introduction to Underwater Acoustics. Berlin, Germany: Springer-Praxis, 2010.
  • 9. Carey, W. M., Evans, R. B.: Ocean ambient noise: measurement and theory. Springer Science & Business Media, 2011.
  • 10. Harrison, C. H.: Formulas for ambient noise level and coherence. The Journal of the Acoustical Society of America, 99(4), 2055-2066, 1996.
  • 11. Harrison, C. H.: CANARY: A simple model of ambient noise and coherence. Applied Acoustics, 51(3), 289-315, 1997.
  • 12. Zilong Peng, Bin Wang, Jun Fan.: Assessment on source levels of merchant ships observed in the East China Sea. Ocean Engineering, 156: 179-190, 2018.
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  • 37. Coward, S.: A method for remote sensing of acoustic ship noise. Master’s thesis, 2013.
  • 38. Brooker, A., Humphrey, V.: Measurement of radiated underwater noise from a small research vessel in shallow water. Ocean Engineering, 120, 182-189, 2016.
  • 39. Scrimger, P., Heitmeyer, R. M.: Acoustic source‐level measurements for a variety of merchant ships. The Journal of the Acoustical Society of America, 89(2), 691-699, 1991.
  • 40. Grelowska, G.: Study of Seasonal Acoustic Properties of Sea Water in Selected Waters of the Southern Baltic, Polish Maritime Research, 23(1), 25-30, 2016.
  • 41. McKenna, M. F., Ross, D., Wiggins, S. M., Hildebrand, J. A.: Underwater radiated noise from modern commercial ships. The Journal of the Acoustical Society of America, 131(1), 92-103, 2012.
  • 42. Coward, S., Tollefsen, D., Dong, H.: Radiated ship noise level estimates from measurements in a fjord. The Journal of the Acoustical Society of America, 134(5), 4150-4150, 2013.
  • 43. Das, A.: Shallow ambient noise variability due to distant shipping noise and tide. Applied Acoustics, 72(9), 660-664, 2011.
  • 44. Roth, E. H., Schmidt, V., Hildebrand, J. A., Wiggins, S. M.: Underwater radiated noise levels of a research icebreaker in the central Arctic Ocean. The Journal of the Acoustical Society of America, 133(4), 1971-1980, 2013.
  • 45. Bassett, C., Polagye, B., Holt, M., Thomson, J.: A vessel noise budget for Admiralty Inlet, Puget Sound, Washington (USA). The Journal of the Acoustical Society of America, 132(6), 3706-3719, 2012.
  • 46. Trevorrow, M. V., Vasiliev, B., Vagle, S.: Directionality and maneuvering effects on a surface ship underwater acoustic signature. The Journal of the Acoustical Society of America, 124(2), 767-778, 2008.
  • 47. Gaggero, T., Bassetti, M., Firenze, E., Tesei, A., Trucco, A.: Processing strategies for evaluating the ship radiated noise using an underwater vertical array. In proc. of 2nd Int. Conf. and Exhibition on Underwater Acoustics, 329-336, 2014.
  • 48. Grelowska, G., Kozaczka, E., Kozaczka, S., Szymczak, W.: Underwater noise generated by a small ship in the shallow sea. Archives of Acoustics, 38(3): 351-356, 2013.
  • 49. Zilong Peng, Jun Fan, Bin Wang.: Analysis and Modelling on Radiated Noise of a Typical Fishing Boat Measured in Shallow Water Inspired by AQUO Project’s Model. Archives of Acoustics, 38(3): 351-356, 2018.
  • 50. SILENV.: Ships oriented Innovative Solutions to Reduce Noise and Vibrations, FP7-EC Collaborative Research Project, 2009-2012.
  • 51. Rizzuto, E., Audoly, C.: AQUO: Achieve QUieter Oceans by shipping noise footprint reduction FP7-Collaborative project nº314227, WP 2: Noise Sources, Task T2.2, “Predictive theoretical models for propeller”, URL: www. aquo. eu, 2015.
  • 52. Hallander, J., Audoly, C.: AQUO: Achieve QUieter Oceans by shipping noise footprint reduction FP7-Collaborative project nº314227, WP 2: Noise Sources, Task T2.3, “Propeller noise experiments in model scale”, URL: www. aquo. eu, 2015.
  • 53. Salinas, R., Audoly, C.: AQUO: Achieve QUieter Oceans by shipping noise footprint reduction FP7-Collaborative project nº314227, WP 2: Noise Sources, Task T2.5, “Synthesis: Impact of propeller noise on global”, URL: www. aquo. eu, 2015.
  • 54. Moreno, A., Audoly, C.: AQUO: Achieve QUieter Oceans by shipping noise footprint reduction FP7-Collaborative project nº314227, WP 2: Noise Sources, Task T3.1, “European URN Standard Measurement Method”, URL: www. aquo. eu, 2015.
  • 55. Salinas, R., Audoly, C.: AQUO: Achieve QUieter Oceans by shipping noise footprint reduction FP7-Collaborative project nº314227, WP 2: Noise Sources, Task T3.2, “On-site measurements -Experimental data for accurate identification and quantification of Cavitation Noise and other sources”, URL: www. aquo. eu, 2015.
  • 56. Andre, M., Audoly, C.: AQUO: Achieve QUieter Oceans by shipping noise footprint reduction FP7-Collaborative project nº314227, WP 2: Noise Sources, Task T3.4, “In-situ measurements of ambient underwater noise along time in different areas with record of AIS data”, URL: www. aquo. eu, 2015.
  • 57. Brooker, A., Humphrey, V., Jansen, E.: Suppression of underwater Noise Induced by Cavitation, FP7-314394- SONIC, Deliverable D2.5: Full Scale Radiated Noise Measurement, 2015.
  • 58. Loughborough University Institutional Repository.: Measurement of underwater noise arising from marine aggregate dredging operations. Marine Aggregate Levy Sustainability Fund (MALSF), 2011.
  • 59. Wright, E. B., Cybulski, J.: Low-frequency acoustic source levels of large merchant ships (No. NRL-8677). NAVAL RESEARCH LAB WASHINGTON DC, 1983.
  • 60. Hamson, R. M.: The modelling of ambient noise due to shipping and wind sources in complex environments. Applied Acoustics, 51(3), 251-287, 1997.
  • 61. Etter, P. C.: Underwater Acoustics Modelling and Simulation: Principle, Techniques and application. Spon Press, New York, 2003.
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  • 63. Hom, F. L. C., Kinda, F. G. B., Hom, S.: Statistical Ambient Noise Maps from Traffic at World and Basin Scales. Institute Of Acoustics, Cambridge, UK, 2016.
  • 64. Colin, M. E., Ainslie, M. A., Binnerts, B., de Jong, C. A., Karasalo, I., Östberg, M., ... Clorennec, D.: Definition and results of test cases for shipping sound maps. IEEE, 2015.
  • 65. Audoly, C., Flikeema, M.: Suppression of underwater Noise Induced by Cavitation, FP7-314394-SONIC, Deliverable D5.4: Guidelines for regulation on UW noise from commercial shipping, 2015.
  • 66. Aulanier, F., Simard, Y., Roy, N., Bandet, M., Gervaise, C.: Groundtruthed probabilistic shipping noise modelling and mapping: Application to blue whale habitat in the Gulf of St. Lawrence. In Proceedings of Meetings on Acoustics 4ENAL (Vol. 27, No. 1, p. 070006). ASA, 2016.
  • 67. Jones, E. L., Hastie, G. D., Smout, S., Onoufriou, J., Merchant, N. D., Brookes, K. L., Thompson, D.: Seals and shipping: quantifying population risk and individual exposure to vessel noise. Journal of applied ecology, 54(6), 1930-1940, 2017.
  • 68. Folegot, T., Clorennec, D., Brunet, P., Six, L., Chavanne, R., van der Schaar, M., André, M.: Monitoring long term ocean noise in European waters. In OCEANS 2015-Genova:1-7, 2015.
  • 69. Soares, C., Zabel, F., Jesus, S. M.: A shipping noise prediction tool. In OCEANS 2015-Genova:1-7, 2015.
  • 70. Erbe, C., MacGillivray, A., Williams, R.: Mapping cumulative noise from shipping to inform marine spatial planning. The Journal of the Acoustical Society of America, 132(5), EL423-EL428, 2012.
  • 71. Sertlek, H. Ö., Binnerts, B., Ainslie, M. A.: The effect of sound speed profile on shallow water shipping sound maps. The Journal of the Acoustical Society of America, 140(1), EL84-EL88, 2016.
  • 72. Buszman K., Gloza M.: Detection of Floating Objects Based on Hydroacoustic and Hydrodynamic Pressure Measurements in the Coastal Zone, Polish Maritime Research, 27(2), 168-175, 2020.
  • 73. Buszman K.: Analysing the Impact on Underwater Noise of Changes to the Parameters of a Ship’s Machinery, Polish Maritime Research, 27(3), 176-181, 2020.
  • 74. Kozaczka, E., Grelowska, G.: Propagation of Ship-Generated Noise in Shallow Sea, Polish Maritime Research, 25(2), 37-46, 2018.
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  • 76. Gaggero, T., Rizzuto, E., Traverso, F., Trucco, A.: Comparing ship underwater noise measured at sea with predictions by empirical models. In proc. of 21st International Congress on Sound and Vibration: 1510-1516, 2014.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-90fba7eb-c9ce-4ec2-ab62-2cda409f582a
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