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Detecting the dangerous development of rolling motion of the contour of a sea-going vessel under the conditions of wind wave effects

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Measurement Techniques Aims and scope

A numerical study of rolling and capsizing of the contour of a vessel under the conditions of wind wave effects is performed by means of computational hydrodynamics. An identifying sign of the dangerous development of a situation leading to capsizing, expressed in a growth in the phase convergence of oscillations of the rolling and heaving motions of the contour, is established. It is shown that the precision of the method and of the onboard hardware instruments used to measure the oscillations of the angle of roll and the ordinate of heaving is acceptable for detection of their phase convergence.

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References

  1. M. P. Buca and I. Senjanovic, “Nonlinear ship rolling and capsizing,” Brodogadnja, 57, No. 4, 321–331 (2006).

    Google Scholar 

  2. European Maritime Safety Agency, Reports of Capsizing and Listing, www.emsa.europa.eu, accessed May 20, 2011.

  3. N. B. Sevastyanov, Stability of Fishing Vessels [in Russian], Sudostroenie, Leningrad (1970).

    Google Scholar 

  4. Yu. I. Nechaev, Simulation of Stability at Sea. Modern Trends [in Russian], Sudostroenie, Leningrad (1989).

    Google Scholar 

  5. V. V. Yarisov, “Dangerous situations in estimation of the navigation safety of different types of vessels,” in: Ekspluatatsiya i Proektirovanie Sudov i Orudii Lova: Sb. BGARF, Kaliningrad (1999), Iss. 28, pp. 29–32.

  6. V. V. Yarisov, Listing and Capsizing of a Low-tonnage Vessel Flooded by Following Sea: A Monograph [in Russian], BGARF, Kaliningrad (2003).

    Google Scholar 

  7. Ya. I. Voytkunskii (ed.), Manual on Theory of Ships, Vol. 2 [in Russian], 3 vols., Sudostroenie, Leningrad (1985).

    Google Scholar 

  8. Yu. I. Nechaev, Patent 2033369 RF, “A method of monitoring the stability of a vessel,” Izobret., No. 11 (1985).

  9. Yu. I. Nechaev and E. Yu. Vasilieva, Patent 2091269 RF, “A method of monitoring the stability of a vessel,” ibid., No. 27 (1997).

  10. Ya. I. Khodorkovskii et al., Patent 2057680 RF, “Meter of the actual stability of a vessel,” ibid., No. 10 (1992).

  11. P. Roach, Computational Hydrodynamics [Russian translation], Mir, Moscow (1980).

    Google Scholar 

  12. V. Yu. Semenova, “Computation of nonlinear lateral oscillations of a vessel situated broadside to regular seas,” Sudostroenie, No. 4, 10–13 (2003).

  13. T. Repalle, K. Thiagarajan, and M. Morris-Thomas, “CFD simulation of wave run-up on a spar cylinder,” in: 16th Australasian Fluid Mechanics Conf. 2007, Dec. 2–7, 2007, Gold Coast, Crown Plaza, Australia, pp. 1091–1094.

  14. V. P. Kolesnik, “Solutions of ANSYS-CFD in aerospace technologies: dynamic reconstructable nets in computational hydrodynamics,” in: Aerospace Technologies and Instruments (AKTO-2008): Proc. 4th Int. Sci. Appl. Conf., Kazan (2008).

  15. K. L. Hsu et al., “Ship flow computation of DTMB 5415,” CFD Workshop, Tokyo (2005), pp. 516–519.

  16. J. Medich, Statistically Optimal Linear Estimates and Control [Translated from English], Energiya, Moscow (1973).

    Google Scholar 

  17. Rules of Classification and Construction of Maritime Vessels [in Russian], Vol. 1, Ross. Morsk. Registr Sudokhodstva, St. Petersburg (2008).

  18. V. V. Semenov-Tyan-Shanskii, S. N. Blagoveshchenskii, and A. N. Kholodilin, Rolling Motions of Vessels [in Russian], Sudostroenie, Leningrad (1969).

    Google Scholar 

  19. V. Yakhot and S. A. Orszag, “Renormalization group analysis of turbulence. Basic theory,” J. Sci. Computing, 1, No. 1, 1–51 (1986).

    Article  MathSciNet  Google Scholar 

  20. GNSS GLONASS/GPS/SBAS Shipboard Receiver with Function to Output Angle of Roll, Angle of Bank, and Trim Angle (FARVATER RK-2106), www.radiocomplex.ru/catalog, accessed June 10, 2011.

  21. Yu. V. Ivanov and R. V. Alaluev, “Device for measurement of vertical motions of a vessel with self-adjustment of parameters,” Girosk. Navigatsiya, No. 4, 58–59 (2002).

    Google Scholar 

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Correspondence to V. M. Dorozhko.

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Translated from Izmeritel’naya Tekhnika, No. 3, pp. 40–44, March, 2012.

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Dorozhko, V.M. Detecting the dangerous development of rolling motion of the contour of a sea-going vessel under the conditions of wind wave effects. Meas Tech 55, 297–303 (2012). https://doi.org/10.1007/s11018-012-9954-6

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