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Articles

Effect of opening geometries on fire development in a ro-ro space

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Pages 272-284 | Received 10 Sep 2021, Accepted 27 Jan 2022, Published online: 25 Feb 2022

References

  • Alpert RL. 1972. Calculation of response time of ceiling-mounted fire detectors. Fire Technol. 8(3):181–195.
  • Chotzoglou KE, Asimakopoulou EK, Zhang J, Delichatsios MA. 2019. An experimental investigation of burning behaviour of liquid pool fire in corridor-like enclosures. Fire Saf J. 108:102826.
  • Chow WK, Zou GW. 2009. Numerical simulation of pressure changes in closed chamber fires. Build Environ. 44(6):1261–1275.
  • Fach K, Bertram V. 2007. High-performance simulations for high-performance ships. Ships Offsh Struct. 2(2):105–113.
  • FIRESAFE. 2018. Study investigating cost effective measures for reducing the risk from fires on ro-ro passenger ships. EMSA/OP/01/2016.
  • Forrest B, Weckman E, DiDomizio M, Senez P, Ryder N. 2020. Smoke development and movement during ventilation-limited fires in a multi-storey house. Fire Mater. 45(8):1063–1074.
  • FSI 21/5. Casualty statistics and investigation report of the correspondence group on casualty analysis. London: International Maritime Organization (Submitted by Canada).
  • Hamins A, Maranghides A, Johnsson R, Donnelly M, Yang G, Mulholland G, Anleitner R L. 2006. Report of experimental results for the international fire model benchmarking and validation exercise 3. NIST special publication 1013-1. Gaithersburg: National Institute of Standards and Technology.
  • Ingason H, Li YZ, Lönnermark A. 2015. Tunnel fire dynamics. New York: Springer.
  • Larsson I, Ingason H, Arvidson M. 2002. Model scale fire tests on a vehicle deck on board a ship. Borås: SP Swedish National Testing and Research Institute.
  • Li YZ, Hertzberg T. 2015. Scaling of internal wall temperatures in enclosure fires. J Fire Sci. 33(2):113–141.
  • Lilja A, Lindgren M. 2019. Influence of ventilation on ro-ro space fire development. Master thesis of Luleå University.
  • McGrattan K, Forney G, Floyd J, Hostikka S, Prasad K. 2002. Fire dynamics simulator (version 3) – user’s guide NITSIR 6784. Gaithersburg: National Institute of Standards and Technology.
  • McGrattan K, Hostikka S, McDermott R, Floyd J, Vanella M. 2018. Fire dynamics simulator (version 6) – user’s guide (NIST special publication 1019). Gaithersburg: National Institute of Standards and Technology.
  • McGrattan K B, Baum H R, Rehm R G. 1998. Large eddy simulations of smoke movement. Fire Saf J. 30:161–178.
  • Merci B, Beji T. 2016. Fluid mechanics aspects of fire and smoke dynamics in enclosures. Balkema: Taylor & Francis Group.
  • Moinuddin KAM, Thomas IR. 2009. An experimental study of fire development in deep enclosures and a new HRR–time–position model for a deep enclosure based on ventilation factor. Fire Mater. 33(4):157–185.
  • Peacock R D, Forney G P, Reneke P A. 2018. CFAST – verification and validation version 7. Gaithersburg: National Institute of Standards and Technology.
  • Salem A. 2010. Fire engineering tools used in consequence analysis. Ships Offsh Struct. 5(2):155–187.
  • Salem AM, Dabess EM, Banawan AA, Leheta HW. 2016. Fire safety design of Nile-floating hotels. Ships Offsh Struct. 11(5):482–500.
  • Savitzky A, Golay MJE. 1964. Smoothing and differentiation of data by simplified least squares procedures. Anal Chem. 36(8):1627–1639.
  • Tewarson A. 2002. Generation of heat and chemical compounds in fires. SFPE Handbook Fire Protect Eng. 3:83–161.
  • Walton WD, Thomas PH, Ohmiya Y, et al. 2016. Estimating temperatures in compartment fires. In: Hurley MJ, Gottuk D, Hall JR, editors. SFPE handbook of fire protection engineering. New York: Springer; p. 996–1023.
  • Wang J, Jiao Y, Shi L, et al. 2018. An experimental and non-dimensional study on the vertical temperature distribution of a sealed ship engine room fire. Ocean Eng. 165:22–33.
  • White JP, Vilfayeau S, Marshall AW, Trouvé A, McDermott RJ. 2017. Modelling flame extinction and reignition in large eddy simulations with fast chemistry. Fire Saf J. 90:72–85.
  • Yao Y, Li YZ, Ingason H, Cheng X, Zhang H. 2021. Theoretical and numerical study on influence of wind on mass loss rates of heptane pool fires at different scales. Fire Saf J. 120:103048.
  • Yao YZ, Li YZ, Lönnermark A, Ingason H, Cheng X. 2019. Study of tunnel fires during construction using a model scale tunnel. Tunn Undergr Space Technol. 89:50–67.
  • Zhao G, Beji T, Merci B. 2016. Application of FDS to under-ventilated enclosure fires with external flaming. Fire Technol. 52(6):2117–2142.
  • Zhao G, Tarek B, Bart M. 2017. Study of FDS simulations of buoyant fire-induced smoke movement in a high-rise building stairwell. Fire Saf J. 91:276–283.

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