Damage Stability Behavior Analysis of a Cruise Liner Using Computer-Aided Design (CAD)

Nitonye Samson, Feniobu Chris Feniobu, Onyeagba Chukwukamagoi Whizfreeman

Abstract


The paper uses more recent scientific and regulatory developments on the damage stability of ships to analyze damage stability of a vessel. The use of CAD in the analysis of several bulky and complex problems facing the maritime sector with respect to ship design and construction has helped reduce human error while more efforts are still made which will possibly eradicate these errors and ensure efficiency in the design and construction of ships. Some softwares are available in the market to support this analysis, as this paper searches to expose the effect on the design and the positive impact on design CAD can if properly integrated into the industry, to this end we used an already existing model of the vessel, made a model of it using the Bentley MaxSurf and then made floodable length analysis using various bulkheads at the fore, aft, and midship region. Thus, generating the graph of floodable length and the various allowable floodable length parameters at different stations.


Keywords


CAD; cruise liner; damage stability; floodable length; maxsurf; vessel

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References


Nitonye Samson, (2015). Stress and Resistance Analysis for the Design of a Work Barge, International Journal of Scientific and Engineering Research, (IJSER) India Vol.6 No: 5, (pn-1064974) (http://www.ijser.org)

Adumene S., & Nitonye, S., (2015). Numerical Modeling of Strength for Hull Form Component of a 700 Tonnes Self- Propelled Barge under Moment and Operational Loading, International Organization of Scientific Research Journal of Engineering, (IOSRJEN) India Vol. 5 No: 5, pp 45 -55 (http://www.iosrjen.org)

Nitonye Samson and Sidum Adumene, (2015). Comparative modeling of hull form resistance for three ocean going vessels using methodical series, International Journal of Engineering and Technology, (IJET) Germany, 4 (4), 489-496; doi: 10.14419/ijet. v4i4.4948 (http://www.sciencepubco/index.php/IJET.com).

Nitonye, S., & Adumene S. (2014). Numerical and experimental analysis for the stability of a 2500 tonnes Offshore Work Boat. International Journal of Applied Science and Engineering, 3 (6), 1041-1053. (http://www.ijaser.com)

Nitonye, S., Ogbonnaya, E. A., & Ejabefio, K. (2013). Stability analysis for the design of 5000-tonnes Offshore Work Barge. International Journal of Engineering and Technology, 3 (9), 849-857. (http://www.ijet.journal.org)

Sameer, S. (2020, February 06). Damage stability analysis of ships. Retrieved February 20, 2021, from https://www.marineinsight.com/naval-architecture/damage-stability-analysis-of-ships/

Cheng, Y.F. & Hirdaris, Spyros. (2012). Improvement of Ship Safety through Stability Research and Innovations. 10.13140/RG.2.1.2996.8724.

Nitonye, S., & Adumene S. (2014). Numerical and experimental analysis for the stability of a 2500 tonnes Offshore Work Boat. International Journal of Applied Science and Engineering, 3 (6), 1041-1053. (http://www.ijaser.com)

Ceyhun, A. C. (2014). THE IMPACT OF SHIPPING ACCIDENTS ON MARINE ENVIRONMENT: A STUDY OF TURKISH SEAS. European Scientific Journal, 10(August 2014), no 23, 1-14.

WILSON, P. A. (2019). BASIC NAVAL ARCHITECTURE: Ship stability. SPRINGER INTERNATIONAL PU. doi:https://doi.org/10.1007/978-3-319-72805-6

R Hanzu-Pazara et al 2016 IOP Conf. Ser.: Mater. Sci. Eng. 145 082019

Initial stability. (2018, May 20). Retrieved March 08, 2021, from https://en.wikipedia.org/wiki/Initial_stability

Bačkalov, Igor & Bulian, Gabriele & Cichowicz, Jakub & Eliopoulou, Eleftheria & Konovessis, Dimitris & Leguen, Jean-François & Rosén, Anders & Themelis, Nikolaos. (2015). Ship Stability, Dynamics and Safety: Status and Perspectives.

Biran, A,Pulido, R. L. (2014). Ship hydrostatics and stability. Amsterdam: Elsevier, Butterworth-Heinemann.

Vance, J. E., & John Davies, E. A. (1989, September 8). Dynamic stability. Retrieved February 17, 2021, from https://www.britannica.com/technology/ship/Dynamic-stability#ref64196

Chakraborty, S (2021, February 05). Ship stability - understanding intact stability of ships. Retrieved March 09, 2021, from https://www.marineinsight.com/naval-architecture/intact-stability-of-surface-ships/#:~:text=First%2C%20Intact%20Stability.,or%20freely%20flooded%20by%20seawater

Chakraborty, S. (2019, November 29). Watertight bulkheads: Construction and regulations. Retrieved March 12, 2021, from https://www.marineinsight.com/naval-architecture/water-tight-bulkheads-on-ships-construction-and-arrangement/

Nitonye, S., & Adumene, S., (2015). Predictive Analysis of Bare-Hull Resistance of a 25,000 DWT Tanker Vessel. International Journal of Engineering and Technology, (IJET) United Kingdom, 5 (4), 194-198. (http://www.ijet.journal.org).

Nitonye, S., Adumene, S. and Howells, U.U. (2017) Numerical Design and Performance Analysis of a Tug Boat Propulsion System, Journal of Power and Energy Engineering, 5, 11, 80-98. https://doi.org/10.4236/jpee.2017.511007 http://www.scirp.org/journal/jpee

Tupper, E. C. (2013). Introduction to naval architecture. Amsterdam: Butterworth-Heinemann, an imprint of Elsevier.

DNV GL Vessel Register, Retrieved March 28, 2021, from https://vesselregister.dnvgl.com/VesselRegister/vesseldetails.html?vesselid=19902

Startpagina Netherlands Regulatory Framework (NeRF) – Maritime (2020), Chapter II-1 Construction - Structure, subdivision and stability, machinery and electrical installations, Available online https://puc.overheid.nl/nsi/doc/PUC_1344_14/3/

Soumya Chakraborty (2019), Ship Stability: Damaged Stability of Ships, available online https://www.marineinsight.com/naval-architecture/ship-stability-damaged-stability-ships/

Royal Caribbean International (2019) Voyage of the Sea, Available online https://www.royalcaribbean.com/cruise-ships/voyager-of-the-seas

Lewis, E. V. (1989). Principles of naval architecture. Jersey City, NJ: Society of Naval Architects and Marine Engineers.

WÄRTSILÄ Encyclopedia of Marine Technology (2019), Damage stability calculations, available online https://www.wartsila.com/encyclopedia/term/damage-stability-calculations

Latorre, R. & Vasconcellos, J. M. (2002). Introduction Of Software Packages in Naval Architecture, Marine and Ocean Engineering Courses. Introduction Of Software Packages in Naval Architecture, Marine and Ocean Engineering Courses, 1-8.

Lamb, T. (2004). Ship design and construction (Vol. 1). Jersey City, NJ: Society of Naval Architects and Marine Engineers.

Savio, G., Concheri, G., Meneghello, R., Angelo, L.D. (2012). COMPUTER AIDED SHIP DESIGN: A NEW TOOLS SUITE FOR MANAGEMENT, TRACING, UNFOLDING AND NESTING OF SHELLS. 2° Congresso Nazionale Del Coordinamento Della Meccanica Italiana - CDMI 2012, 1-12.

Andrei, Cristian & Stanca, Costel & Acomi, Nicoleta & Dumitrache, C & Ancuta, Cristian. (2018). Damage stability analysis in particular flooding situations of a multipurpose cargo ship. IOP Conference Series: Materials Science and Engineering. 400. 082001. 10.1088/1757-899X/400/8/082001.

Boulougouris, E., Cichowicz, J., Jasionowski, A., & Konovessis, D. (2016). Improvement of ship stability and safety in damaged condition through operational measures: Challenges and opportunities. Ocean Engineering, 122, 311-316. doi: 10.1016/j.oceaneng.2016.06.010

Vassalos, Dracos & Boulougouris, Evangelos & Paterson, Donald & Kanerva, Markku. (2016). Designing for Damage Stability beyond Design Level

Tomić, B., Turk, A., & Čalić, B. (2018). Recent advances in damage stability assessment with application on a container vessel. Journal of Maritime & Transportation Science, 2(Special edition 2), 167-184. doi:10.18048/2018-00.167

Coraddu, A. , Gualeni, P., & Villa, D. (2011). Investigation about wave profile effects on ship stability. Sustainable Maritime Transportation and Exploitation of Sea Resources, 143-149. doi:10.1201/b11810-25

Themelis, N., & Spyrou, K. J. (2011). Efficient probabilistic assessment of intact stability. Fluid Mechanics and Its Applications, 515-530. doi:10.1007/978-94-007-1482-3_29

Fr´ed´eric Le Pivert, Abdelkader Tizaoui, Radjesvarane Alexandre, and Jean-Yves Billard (2015) Analytical Study of the Capsize Probability of a Frigate, 12th International Conference on the Stability of Ships and Ocean Vehicles (STAB 2015) At: Glasgow, Scotland, UK. Available online https://www.researchgate.net/publication/ 275828898_Analytical_Study_of_the_Capsize_Probability_of_a_Frigate

Younis, G., Abdelghany, R., Mostafa, M., & El-Barbary, R. (2019). Sensitivity analyses of intact and damage stability properties to passenger ship’s dimensions and proportions. Port-Said Engineering Research Journal, 23(1), 65-73. doi:10.21608/pserj.2019.32861

Ruponen, P. , Pennanen, P. , & Manderbacka, T. (2019). On the alternative approaches to stability analysis in decision support for damaged passenger ships. WMU Journal of Maritime Affairs, 18(3), 477-494. doi:10.1007/s13437-019-00186-8




DOI: http://dx.doi.org/10.12962/j25481479.v6i4.9757

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