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ISSN 2083-6473
ISSN 2083-6481 (electronic version)
 

 

 

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Prof. Tomasz Neumann
 

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TransNav, Faculty of Navigation
Gdynia Maritime University
3, John Paul II Avenue
81-345 Gdynia, POLAND
www http://www.transnav.eu
e-mail transnav@umg.edu.pl
Revisiting Unsinkable Ships: From Titanic to Helge Ingstad, the Long-Standing Issues and Persistent Risks of Ship Disasters
1 University of Tromsø the Arctic University of Norway, Tromsø, Norway
2 Western Norway University of Applied Sciences, Haugesund, Rogaland, Norway
3 University of Stavanger, Stavanger, Norway
ABSTRACT: The objective of this paper is to take a closer look at the theory of damage stability, i.e., origin, construction, organization and human developments, regulations, and in this context pinpoint a possible causal relationship between two specific ship losses: the losses of RMS Titanic and KNM Helge Ingstad. The paper does not discuss direct causes but rather tries to discuss possible causal links to the fact that the water intrusion was not limited or stopped by the ships` watertight subdivisions. References regarding assessments of the well-known loss of RMS Titanic are based on extensive studies carried out while assessment of possible ship construction defects and outcomes regarding poor decision-making related to the KNM Helge Ingstad loss refer to findings published in the National Safety Investigation Agency (NSIA) Part 2. The purpose of the paper is to set focus on the application of lessons learned after the loss of RMS Titanic associated to the main findings in the NSIA part 2 report. In this context, focus on whether the degree of competence we gain through Maritime Education and Training (MET) is sufficient, and then how this competence affects the practice. More specific, competence related to lessons learned regarding ship damage stability aspects such as survivability and recoverability.
REFERENCES
Heath, T, L. The Works of Archimedes. Cambridge University Press, 256 – 263, 1897.
Francescutto, A., Papanikolaou, A, D. Buoyancy, stability, and subdivision: Archimedes to SOLAS 2009 and the way ahead, 2010. - doi:10.1177/14750902JEME238
UNCTAD. E-Handbook of Statistics, 2021. https://hbs.unctad.org/merchant-fleet/#Ref_8IVYHP88, 2021. Accessed 9th September 2022.
Allianz Global Corporate Speciality. Safety and Shipping Review 2022. May 2022.
Schröder-Hinrichs, J. U., Hollnagel, E., Baldauf, M. From Titanic to Costa Concordia: a century of lessons not learned. WMU Journal of Maritime Affairs 11, 151-167, 2012. - doi:10.1007/s13437-012-0032-3
Woods, D. D., Johannesen, L. J., Cook, R. I., Sarter, N. B. Behind Human Error: Cognitive Systems, Computers and Hindsight, 1994.
Hollnagel, E. Barriers and Accidents Prevention. Aldershot, UK: Ashgate, 2004.
Ludík, T., Barta, J., Navrátil, J. (2013). Design Patterns for Emergency Management Processes. World Academy of Science, Engineering and Technology, International Journal of Economics and Management Engineering Vol:7, No:12, 2013.
Bassett, V. Causes and Effects of the Rapid Sinking of the Titanic. Department of Mechanical Engineering, the University of Wisconsin, 1998.
NSIA. https://havarikommisjonen.no/Marine/ Published-reports/2021-05-eng, 2021. Accessed 9th September 2022.
Lu, Y. (2015). A History of Chinese Science and Technology, Volume 3. Shanghai Jiao Tong University Press, Shanghai and Springer-Verlag Berlin Heidelberg, 453-461, 2015.
Plimsoll, S. Our Seamen, an Appeal. Andesite Press. 11 August 2015, 1873.
Barrass, B., Derrett, D. R. Ship Stability for Masters and Mates, sixth edition. Elsevier Ltd, 2006. - doi:10.1016/B978-075066784-5/50050-2
IMO. SOLAS-International Convention for the Safety of Life at Sea; IMO: London, UK, 2009/(2020).
ICLL. International Convention on Load Lines 1966 (MSC. 172 (79)), 1966.
Vassalos, D., Guarin, L. Designing for Damage Stability and Survivability – Contemporary Developments and Implementation, 2009.
Birian, A., Lopez-Pulido, R. Ship Hydrostatics and Stability, second edition, 2014. - doi:10.1016/B978-0-08-098287-8.00002-5
Goulielmos, A. M., Goulielmos, M. A. The accident of m/v Herald of Free Enterprise, a failure of the ship or of the management? Disaster Prevention and Management 14 (4), 476-492, 2005. - doi:10.1108/09653560510618320
Eliopoulou, E., Papanikolaou, A., Voulgarellis, M. Statistical analysis of ship accidents and review of safety level. Safety Science 85, 282-292, 2016. - doi:10.1016/j.ssci.2016.02.001
Lee, B. S. Hydrostatics and Stability of Marine Vehicles. Springer Series on Naval Architecture, Marine Engineering, Shipbuilding and Shipping 7, 2019.
Liwong, H., Jonsson, H. Comparison between different survivability measures on a generic frigate. Trans RINA, Vol 157, Part A2, intl J Maritime Eng, 2015 - doi:10.3940/rina.ijme.2015.a2.325
Boulougouris, E., Papanikolaou, A. Risk-based design of naval combatants. Ocean Engineering 65 (2013) 49-6, 2013. - doi:10.1016/j.oceaneng.2013.02.014
Grech, M. R., Drohan, D., Warren, R., Gamble, G. I. Ship recoverability: How important is the human factors input, 2012.
Nagarajan, K. V. The Code of Hammurabi: An economic interpretation. International Journal of Business and Social Science 2 (8), 2011.
Gordon, C. H. Hammurabi’s Code. New York: Holt, Reinhart and Winston, 1965.
Tupper, E. C. Introduction to Naval Architecture, fifth edition. Elsevier Ltd, 2013. - doi:10.1016/B978-0-08-098237-3.00001-1
Lancaster, J. Engineering Catastrophes: Causes and Effects of Mayor Accidents. Abington, USA: Abington Publishing, 1996.
IMO. Guidelines for verification of damage stability requirements for tankers. MRC. 1/Circ. 1461, 2013.
de Vos, J., Hekkenberg, R. G., Koelman, H. J. Damage stability requirements for autonomous ships based on equivalent safety. Safety Science 130, 2020. - doi:10.1016/j.ssci.2020.104865
Vassalos, D. The Role of Damaged Ships Dynamics in addressing the Risk of Flooding. Ships and Offshore Structures. Maritime Safety Research Centre, Department of Naval Architecture, Ocean and Marine Engineering, University of Strathclyde, Glasgow, Scotland, UK, 2020.
Boulougouris, E., Winnie, S., Papanikolaou, A. Advanced damage stability assessment for surface combatants. Ocean Engineering 120, 305-311, 2016. - doi:10.1016/j.oceaneng.2016.02.040
Allied Naval Engineering Publication. ANEP-77 Part 1. Naval ship code: goals, functional objectives and performance requirements. Edition G Version 3, 2019.
INSA. (2021). International Naval Safety Association. https://www.navalshipcode.org, 2021. Accessed 9th September 2022.
Bassett, V. Causes and Effects of the Rapid Sinking of the Titanic. Department of Mechanical Engineering, the University of Wisconsin, 1998.
Vassalos, D., Boulougouris, E., Paterson, D., Kanerva, M. Designing for Damage Stability beyond Design Level. Conference: 6th Conference on Design for Safety, Hamburg, 2016.
Newworldencyclopedia. https://www.newworldencyclopedia.org/entry/RMS_Titanic, 2021. Accessed 9th September 2022.
Stettler, J. W., Thomas, B. S. Flooding and structural forensic analysis of the sinking of the RMS Titanic. Ships and Offshore Structures 83(-4), 346-366, 2013. - doi:10.1080/17445302.2012.747289
Hahn Titanic-Plans. http://www.titanic-plan.com/start_e.html, 2021. Accessed 9th September 2022.
Gannon, R. What really sank the Titanic. Popular Science 246 (2), 49-55, 1995.
Ball, R. E., Calvano, C. N. Establishing the fundamentals of surface ship, survivability design discipline. Naval Engineers Journal, Issue 1, 1994.
Merchant Shipping Act. An Act to Amend and Consolidate the Acts Relating to Merchant Shipping. Re-printed by Theos Jones, 1854.
IMO. International Convention on Standards of Training, Certification and Watchkeeping for Seafarers, 1978, 2018.
IMO. https://www.imo.org/en/About/Conventions/Pages/International-Convention-for-the-Safety-of- Life-at-Sea-(SOLAS),-1974.aspx, 2021. Accessed 9th September 2022.
Marshall, L. Sinking of the Titanic: Great Sea Disasters. Iboo Press. EAN/UPC 9781641812016, 1918.
MySeaTime. https://www.myseatime.com/blog/detail/damage-stability, 2021. Accessed 9th september 2022.
Hovden, S. T. Redningsdåden – om Maksim Gorkiy-havariet utenfor Svalbard i 1989, Commentum Forlag, 2012.
Kemp, P. Seamanship: The Complete Illustrated Guide for the Cruising Yachtsman, first American edition, Van Nostrand Reinhold, 1983.
Callman, K. Medical Education: Past, Present and Future, first edition, p. 401. Churchill Livingstone, 2006.
Whitestarhistory. https://www.whitestarhistory.com/olympic, 2021. Accessed 9th September 2022.
Riola, J. M., Perez, R. Warship damage stability criteria case study. Journal of Maritime Research, VI (III), 75-100, 2009.
Citation note:
Johansen K., Gudmestad O.T.: Revisiting Unsinkable Ships: From Titanic to Helge Ingstad, the Long-Standing Issues and Persistent Risks of Ship Disasters. TransNav, the International Journal on Marine Navigation and Safety of Sea Transportation, Vol. 18, No. 1, doi:10.12716/1001.18.01.08, pp. 95-106, 2024
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