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The Effect of Various Bulbous Bow Forms on The Resistance of a Black Sea Type Fishing Boat

Year 2024, Volume: 4 Issue: 2, 57 - 76, 30.12.2024

Abstract

In this study, resistance analyses of a 35-meter-long Black Sea Type Fishing Boat with various bow forms were conducted using Computational Fluid Dynamics (CFD). The boat's bow shapes included a normal bow without a bulb, a special bulb, a special-elliptical bulb, and an elliptical bulb. To determine the resistance values of these forms, the Realizable k-ε model was chosen as the turbulence model, and the Volume of Fluid (VOF) method was applied. Resistance analyses were performed at five different speeds (5.5, 7.5, 9.5, 11.5, and 13.5 knots), within the Fn range of 0.15 to 0.40. Shear, pressure, and total resistance values were presented in both tables and graphs. The CFD resistance results were compared with those from the Holtrop and Fung resistance estimation methods, and the results were found to be consistent. Performance evaluations of the bulb shapes were made by comparing the friction, pressure, and total resistance coefficients. While the special bulb resulted in the greatest reduction in total resistance, the special-elliptical bulb demonstrated better performance across a wider range of speeds. It was also concluded that the traditional elliptical bulb type is unsuitable for this type of vessel.

References

  • Abramowski, T., & Sugalski, K. (2017). Energy saving procedures for fishing vessels by means of numerical optimization of hull resistance. Zeszyty Naukowe Akademii Morskiej w Szczecinie, 49(121), 19–27.
  • Atlar, M. (1977). Investigation the effect of scale and bulbous bow on the fishing boats [Unpublished master thesis]. Istanbul Technical University. [Turkish]
  • Baba, E. (1969). A new component of viscous resistance of ships. Transactions of the Society of Naval Architects of Japan, 125, 69–81.
  • Başaran Gemi. Eminoğulları 3. https://www.basarangemi.com.tr/ships/balik-avci/eminogullari-3 Accessed on Nov 01, 2024.
  • Başaran Gemi. Habibin Yavuz, https://www.basarangemi.com.tr/ships/balik-avci/habibin-yavuz Accessed on Nov 01, 2024.
  • Başaran Gemi. (2024). Hakkımızda, başaran gemi sanayi. https://www.basarangemi.com.tr/pages/hakkimizda Accesed on Nov 01, 2024.
  • Bahatmaka, A., & Kim, D. J. (2019). Numerical approach for the traditional fishing vessel analysis of resistance by CFD. Journal of Engineering Science and Technology, 14(1), 207–217.
  • Bragg, M. (1930). Results of experiments upon bulbous bows. Transactions SNAME, 38, 13–43.
  • CD-Adapco. (2014). User Guide, Star-CCM+ Version 9.04, CD-Adapco.
  • Díaz-Ojeda, H. R., Pérez-Arribas, F., & Turnock, S. R. (2023). The influence of dihedral bulbous bows on the resistance of small fishing vessels: A numerical study. Ocean Engineering, 281, Article 114661.
  • Díaz Ojeda, H. R., Oyuela, S., Sosa, R., Otero, A. D., & Pérez Arribas, F. (2024). Fishing vessel bulbous bow hydrodynamics-a numerical reverse design approach. Journal of Marine Science and Engineering, 12(3), Article 436.
  • Dinçer, A. C. (1992). A design study of Turkish Black Sea fishing vessels [Master thesis]. University of Glasgow. Available from ProQuest Dissertations & Theses Global database. (UMI No. 11011427).
  • Ergün Gemi. (2024). Kurumsal tarihçe. https://ergungemi.com.tr/hakkimizda/ Accessed on Nov 01, 2024.
  • Ferguson, A. M. (1967). Hull and bulbous bow interaction. Transactions RINA, 112(4), 421–441.
  • Inui, T., Takaehi, T., & Kumano, M. (1960). Wave profile measurement on the wave making characteristics of the bulbous bow. Society of Naval Architects of Japan (Translation from the University of Michigan), 16–35.
  • Inui, T. (1962). Wave making resistance of ships. Transactions SNAME, 70, 283–313.
  • Iqbal, M., Budiarto, U., Hidayat, K. Z., Hernanta, H. H., & Trimulyono, A. (2021). The influence of foil-shaped center bulb geometry into catamaran fishing vessels resistance. In IOP Conference Series: Materials Science and Engineering, 1034(1), IOP Publishing.
  • ITTC. (2021). ITTC-Recommended Procedures and Guidelines: Uncertainty analysis in CFD verification and validation methodology and procedures. Eff. Date 2021, Revision 04.
  • Kafalı, K., Şaylan, O., & Salcı, A. (1979). Developing of hull forms of fishing boats suitable for Turkish waters. The Scientific & Technological Research Council of Turkey, Project No. G-416. [Turkish]
  • Kim, D.J., Iqbal, M., Bahatmaka, A., & Prabowo, A. R. (2018). Bulbous bow applications on a catamaran fishing vessel for improving performance. In: MATEC Web of Conferences, 159, (1-6), EDP Sciences.
  • Kracht, A. M. (1978). Design of bulbous bows. Transactions SNAME, 86, 197–217.
  • Li, C., Wang, Y., Chen, J. (2016). Study on the shape parameters of bulbous bow of tuna longline fishing vessel. 5th International Conference on Energy and Environmental Protection (ICEEP 2016), 17-18 September 2013, (250–255). Shenzhen.
  • Muntjewerf, J. J. (1967). Methodical series experiments on cylindrical bows. Transactions RINA, 112(2), 199–223.
  • Oyuela, S., Ojeda, H. R. D., Arribas, F. P., Otero, A. D., & Sosa, R. (2024). Investigating fishing vessel hydrodynamics by using EFD and CFD tools, with focus on total ship resistance and its components. Journal of Marine Science and Engineering, 12(4), Article 622.
  • Özdemir, Y., H. (2007). Investigation of the flow surrounding the ship by using computational fluid dynamics [Master thesis]. Yıldız Technical University. Council of Higher Education Thesis Center (Accession No. 213256). [Turkish]
  • Raju, M.S.P., Sivabalan, P., Thamby, T., & Saravanan, B. (2020). Effect of bulbous bow on resistance of a tuna longliner. International Journal of Advanced Research in Engineering and Technology, 11(2), 136–145.
  • Roache, P., J. (1994). Perspective: a method for uniform reporting of grid refinement studies. Journal of Fluids Engineering, 116(3), 405–413.
  • Richardson, L. F. (1927). The deferred approach to the limit. Transactions of the Royal Society of London, Series A, 226, 299–361.
  • Samuel, S., Iqbal, M., Utama, I.K.A.P. (2015). An investigation into the resistance components of converting a traditional monohull fishing vessel into catamaran form. International Journal of Technology, 6(3), 432–441.
  • Saral, D. (2016). A systematic investigation of the effects of various bulbous bows on resistance of fishing boats [Master thesis]. Karadeniz Technical University. Council of Higher Education Thesis Center (Accession No. 430371). [Turkish]
  • Saral, D. (2023). Form optimization of the Black Sea type fishing vessels [Doctorial Thesis]. Karadeniz Technical University. Council of Higher Education Thesis Center (Accession No. 791295). [Turkish]
  • Saral, D., Aydın, M. & Köse, E. (2018). A systematic investigation of the effects of various bulbous bows on resistance of fishing boats. Brodogradnja, 69(2), 93–117.
  • Saral, D. & Köse, E. (2020). Resistance analyses of a traditional Black Sea type fishing ship with CFD in calm water. Turkish Journal of Maritime and Marine Sciences, 6(2), 207–223.
  • Saral, D., & Köse, E. (2024). Academic studies on fishing vessels in Turkey. Ocean Engineering, 308, Article 118295.
  • Setyawan, D., Utama, I. K., Murdijanto, M., Sugiarso, A., & Jamaluddin, A. (2010). Development of catamaran fishing vessel. IPTEK The Journal for Technology and Science, 21(4), 167–173.
  • Sharma, R., & Sha, O. P. (2005). Practical hydrodynamic design of bulbous bows for ships. Naval Engineers Journal, 117(1), 57–75.
  • Shearer, J. R., & Steele, B. N. (1970). Some aspects of the resistance of full form ships. Transactions RINA, 112(4), 69–83.
  • Shih, T. H., Liou, W. W., Shabbir, A., Yang, Z., & Zhu, J. (1995). A new k–ε Eddy-viscosity model for high Reynolds number turbulent flows-model development and validation. Computers Fluids, 24(3), 227–238.
  • Siemens. (2021). User Guide, Simcenter STAR-CCM+ Hull Performance Workflow 2021.2.
  • Söylemez, M. (1983). Application of bulb to fishing boats [Undergraduate Graduation Project]. Istanbul Technical University. [Turkish]
  • Szelangiewicz, T., Abramowski, T., Żelazny, K., & Sugalski, K. (2021). Reduction of resistance, fuel consumption and GHG emission of a small fishing vessel by adding a bulbous bow. Energies, 14(7), Article 1837.
  • Taylor, D. W. (1923). Marine Engineering and Shipping Age (pp. 540–548). Aldrich Publishing Company.
  • Tran, T. G., Van Huynh, C., & Kim, H. C. (2021). Optimal design method of bulbous bow for fishing vessels. International Journal of Naval Architecture and Ocean Engineering, 13, 858–876.
  • Weinblum, G. (1935). Die theorie der wulstschiffe. Der Gesellshaft fur Angevandte Mathematik, 135-156.
  • Wigley, W. C. S. (1936). The theory of bulbous bow and its practical application. Transactions NECIES, 52, 65–88.
  • Yim, B. (1963). On ships with zero and small wave resistance. Paper presented at the in Proceedings of International Seminar on Theoretical Wave Resistance, Michigan, USA, 163–193.
  • Yim, B. (1965). Analyses of spherical bulbs on a ship bow. Inc. Technical Report 117, 28–39.
  • Yim, B. (1974). A simple design theory and method for bulbous bows of ships. Journal of Ship Research, 18 (3), 141–152.
  • Yim, B. (1980). Simple calculation of sheltering effect on ship-wave resistance and bulbous bow design, Journal of Ship Research, 24 (4), 232–243.
Year 2024, Volume: 4 Issue: 2, 57 - 76, 30.12.2024

Abstract

References

  • Abramowski, T., & Sugalski, K. (2017). Energy saving procedures for fishing vessels by means of numerical optimization of hull resistance. Zeszyty Naukowe Akademii Morskiej w Szczecinie, 49(121), 19–27.
  • Atlar, M. (1977). Investigation the effect of scale and bulbous bow on the fishing boats [Unpublished master thesis]. Istanbul Technical University. [Turkish]
  • Baba, E. (1969). A new component of viscous resistance of ships. Transactions of the Society of Naval Architects of Japan, 125, 69–81.
  • Başaran Gemi. Eminoğulları 3. https://www.basarangemi.com.tr/ships/balik-avci/eminogullari-3 Accessed on Nov 01, 2024.
  • Başaran Gemi. Habibin Yavuz, https://www.basarangemi.com.tr/ships/balik-avci/habibin-yavuz Accessed on Nov 01, 2024.
  • Başaran Gemi. (2024). Hakkımızda, başaran gemi sanayi. https://www.basarangemi.com.tr/pages/hakkimizda Accesed on Nov 01, 2024.
  • Bahatmaka, A., & Kim, D. J. (2019). Numerical approach for the traditional fishing vessel analysis of resistance by CFD. Journal of Engineering Science and Technology, 14(1), 207–217.
  • Bragg, M. (1930). Results of experiments upon bulbous bows. Transactions SNAME, 38, 13–43.
  • CD-Adapco. (2014). User Guide, Star-CCM+ Version 9.04, CD-Adapco.
  • Díaz-Ojeda, H. R., Pérez-Arribas, F., & Turnock, S. R. (2023). The influence of dihedral bulbous bows on the resistance of small fishing vessels: A numerical study. Ocean Engineering, 281, Article 114661.
  • Díaz Ojeda, H. R., Oyuela, S., Sosa, R., Otero, A. D., & Pérez Arribas, F. (2024). Fishing vessel bulbous bow hydrodynamics-a numerical reverse design approach. Journal of Marine Science and Engineering, 12(3), Article 436.
  • Dinçer, A. C. (1992). A design study of Turkish Black Sea fishing vessels [Master thesis]. University of Glasgow. Available from ProQuest Dissertations & Theses Global database. (UMI No. 11011427).
  • Ergün Gemi. (2024). Kurumsal tarihçe. https://ergungemi.com.tr/hakkimizda/ Accessed on Nov 01, 2024.
  • Ferguson, A. M. (1967). Hull and bulbous bow interaction. Transactions RINA, 112(4), 421–441.
  • Inui, T., Takaehi, T., & Kumano, M. (1960). Wave profile measurement on the wave making characteristics of the bulbous bow. Society of Naval Architects of Japan (Translation from the University of Michigan), 16–35.
  • Inui, T. (1962). Wave making resistance of ships. Transactions SNAME, 70, 283–313.
  • Iqbal, M., Budiarto, U., Hidayat, K. Z., Hernanta, H. H., & Trimulyono, A. (2021). The influence of foil-shaped center bulb geometry into catamaran fishing vessels resistance. In IOP Conference Series: Materials Science and Engineering, 1034(1), IOP Publishing.
  • ITTC. (2021). ITTC-Recommended Procedures and Guidelines: Uncertainty analysis in CFD verification and validation methodology and procedures. Eff. Date 2021, Revision 04.
  • Kafalı, K., Şaylan, O., & Salcı, A. (1979). Developing of hull forms of fishing boats suitable for Turkish waters. The Scientific & Technological Research Council of Turkey, Project No. G-416. [Turkish]
  • Kim, D.J., Iqbal, M., Bahatmaka, A., & Prabowo, A. R. (2018). Bulbous bow applications on a catamaran fishing vessel for improving performance. In: MATEC Web of Conferences, 159, (1-6), EDP Sciences.
  • Kracht, A. M. (1978). Design of bulbous bows. Transactions SNAME, 86, 197–217.
  • Li, C., Wang, Y., Chen, J. (2016). Study on the shape parameters of bulbous bow of tuna longline fishing vessel. 5th International Conference on Energy and Environmental Protection (ICEEP 2016), 17-18 September 2013, (250–255). Shenzhen.
  • Muntjewerf, J. J. (1967). Methodical series experiments on cylindrical bows. Transactions RINA, 112(2), 199–223.
  • Oyuela, S., Ojeda, H. R. D., Arribas, F. P., Otero, A. D., & Sosa, R. (2024). Investigating fishing vessel hydrodynamics by using EFD and CFD tools, with focus on total ship resistance and its components. Journal of Marine Science and Engineering, 12(4), Article 622.
  • Özdemir, Y., H. (2007). Investigation of the flow surrounding the ship by using computational fluid dynamics [Master thesis]. Yıldız Technical University. Council of Higher Education Thesis Center (Accession No. 213256). [Turkish]
  • Raju, M.S.P., Sivabalan, P., Thamby, T., & Saravanan, B. (2020). Effect of bulbous bow on resistance of a tuna longliner. International Journal of Advanced Research in Engineering and Technology, 11(2), 136–145.
  • Roache, P., J. (1994). Perspective: a method for uniform reporting of grid refinement studies. Journal of Fluids Engineering, 116(3), 405–413.
  • Richardson, L. F. (1927). The deferred approach to the limit. Transactions of the Royal Society of London, Series A, 226, 299–361.
  • Samuel, S., Iqbal, M., Utama, I.K.A.P. (2015). An investigation into the resistance components of converting a traditional monohull fishing vessel into catamaran form. International Journal of Technology, 6(3), 432–441.
  • Saral, D. (2016). A systematic investigation of the effects of various bulbous bows on resistance of fishing boats [Master thesis]. Karadeniz Technical University. Council of Higher Education Thesis Center (Accession No. 430371). [Turkish]
  • Saral, D. (2023). Form optimization of the Black Sea type fishing vessels [Doctorial Thesis]. Karadeniz Technical University. Council of Higher Education Thesis Center (Accession No. 791295). [Turkish]
  • Saral, D., Aydın, M. & Köse, E. (2018). A systematic investigation of the effects of various bulbous bows on resistance of fishing boats. Brodogradnja, 69(2), 93–117.
  • Saral, D. & Köse, E. (2020). Resistance analyses of a traditional Black Sea type fishing ship with CFD in calm water. Turkish Journal of Maritime and Marine Sciences, 6(2), 207–223.
  • Saral, D., & Köse, E. (2024). Academic studies on fishing vessels in Turkey. Ocean Engineering, 308, Article 118295.
  • Setyawan, D., Utama, I. K., Murdijanto, M., Sugiarso, A., & Jamaluddin, A. (2010). Development of catamaran fishing vessel. IPTEK The Journal for Technology and Science, 21(4), 167–173.
  • Sharma, R., & Sha, O. P. (2005). Practical hydrodynamic design of bulbous bows for ships. Naval Engineers Journal, 117(1), 57–75.
  • Shearer, J. R., & Steele, B. N. (1970). Some aspects of the resistance of full form ships. Transactions RINA, 112(4), 69–83.
  • Shih, T. H., Liou, W. W., Shabbir, A., Yang, Z., & Zhu, J. (1995). A new k–ε Eddy-viscosity model for high Reynolds number turbulent flows-model development and validation. Computers Fluids, 24(3), 227–238.
  • Siemens. (2021). User Guide, Simcenter STAR-CCM+ Hull Performance Workflow 2021.2.
  • Söylemez, M. (1983). Application of bulb to fishing boats [Undergraduate Graduation Project]. Istanbul Technical University. [Turkish]
  • Szelangiewicz, T., Abramowski, T., Żelazny, K., & Sugalski, K. (2021). Reduction of resistance, fuel consumption and GHG emission of a small fishing vessel by adding a bulbous bow. Energies, 14(7), Article 1837.
  • Taylor, D. W. (1923). Marine Engineering and Shipping Age (pp. 540–548). Aldrich Publishing Company.
  • Tran, T. G., Van Huynh, C., & Kim, H. C. (2021). Optimal design method of bulbous bow for fishing vessels. International Journal of Naval Architecture and Ocean Engineering, 13, 858–876.
  • Weinblum, G. (1935). Die theorie der wulstschiffe. Der Gesellshaft fur Angevandte Mathematik, 135-156.
  • Wigley, W. C. S. (1936). The theory of bulbous bow and its practical application. Transactions NECIES, 52, 65–88.
  • Yim, B. (1963). On ships with zero and small wave resistance. Paper presented at the in Proceedings of International Seminar on Theoretical Wave Resistance, Michigan, USA, 163–193.
  • Yim, B. (1965). Analyses of spherical bulbs on a ship bow. Inc. Technical Report 117, 28–39.
  • Yim, B. (1974). A simple design theory and method for bulbous bows of ships. Journal of Ship Research, 18 (3), 141–152.
  • Yim, B. (1980). Simple calculation of sheltering effect on ship-wave resistance and bulbous bow design, Journal of Ship Research, 24 (4), 232–243.
There are 49 citations in total.

Details

Primary Language English
Subjects Maritime Engineering (Other)
Journal Section Research Article
Authors

Dursun Saral 0000-0003-1029-7007

Publication Date December 30, 2024
Submission Date October 7, 2024
Acceptance Date December 25, 2024
Published in Issue Year 2024 Volume: 4 Issue: 2

Cite

APA Saral, D. (2024). The Effect of Various Bulbous Bow Forms on The Resistance of a Black Sea Type Fishing Boat. Seatific Journal, 4(2), 57-76.

Seatific Journal

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