Skip to main content
Top
Published in: Fire Technology 6/2018

06-07-2018

Ellipsoidal Solid Flame Model for Structures Under Localized Fire

Authors: Miguel R. Manco, Murilo A. Vaz, Julio C. R. Cyrino, Alexandre Landesmann

Published in: Fire Technology | Issue 6/2018

Log in

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

This paper presents a model to evaluate the thermal energy transfer between a localized fire and the surfaces exposed to it, without the flame impinging the ceiling of the semi-open compartment. Although this type of fire may not have significant consequences for the structure as a whole, it is capable of triggering other disasters such as explosions and larger fires, which is why its study becomes increasingly important. Currently, this accident is analyzed using either sophisticated or semi-empirical numerical models available in the literature. The former uses computational fluid dynamics (CFD), which acceptably reproduces the fire, although with high computational cost. In turn, the semi-empirical models generally present conservative results. The proposed model presents variants in classic simple models available in the literature with the aim of being a tool that allows designers to estimate the thermal fields resulting from this type of fires at the preliminary structure design stage. In this model, the thermal analysis is performed using a finite element program, considering relevant parameters that characterize the fire such as: heat release rate, location and equivalent diameter of the fire source, among others. Through subroutines, the finite element model considers (a) a modification of hot gases temperature field based in a classic simple model and (b) proposition of a new geometry of the flame. The estimated radiative heat flux employs a solid ellipsoidal flame whose height changes according to the heat release rate. The convective heat flux is evaluated using a model for localized fire. Efficiency and accuracy of the methodology are checked by comparing the simulation results with those obtained by sophisticated models developed in fire dynamic simulator (FDS). The cases studied consider: (a) the replication of the experimental test conducted at Luleå University and (b) an offshore platform deck under localized fire action. The results of the first case confirm that the FDS replicates the experimental measurements with high accuracy. Finally, the results show that the proposed model allows to realistically represent the temperature fields generated by the fire, with relatively low computational cost compared to the CFD models for cases (a) and (b), therefore it is possible to use it to develop preliminary analyses in other fire scenarios.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Literature
1.
go back to reference Quintiere JG (2006) Fundamentals of fire phenomena, 1st edn. John Wiley & Sons Ltd Quintiere JG (2006) Fundamentals of fire phenomena, 1st edn. John Wiley & Sons Ltd
3.
go back to reference McGrattan K, Hostikka S, McDermott R et al (2015) Fire dynamics simulator, technical reference guide, 6.2 edn, vol 1: mathematical model, vol 2: verification guide, vol 3: validation guide McGrattan K, Hostikka S, McDermott R et al (2015) Fire dynamics simulator, technical reference guide, 6.2 edn, vol 1: mathematical model, vol 2: verification guide, vol 3: validation guide
8.
go back to reference Manco MR, Vaz MA, Cyrino JCR, Landesmann A (2013) Behavior of stiffened panels exposed to fire. In: Romanoff J, Soares CG (eds) Analysis and design of marine structures, MARSTRUCT 2013. CRC Press, pp 101–108 Manco MR, Vaz MA, Cyrino JCR, Landesmann A (2013) Behavior of stiffened panels exposed to fire. In: Romanoff J, Soares CG (eds) Analysis and design of marine structures, MARSTRUCT 2013. CRC Press, pp 101–108
11.
go back to reference Manco MR (2016) Numerical model for thermomechanical analysis of structures submitted to pool fire. Federal University of Rio de Janeiro, Rio de Janeiro (in Potuguese) Manco MR (2016) Numerical model for thermomechanical analysis of structures submitted to pool fire. Federal University of Rio de Janeiro, Rio de Janeiro (in Potuguese)
13.
go back to reference European Committee for Standardization (2005) EN 1993-1-2: Eurocode 3: design of steel structures—part 1–2: general rules—structural fire design. Br Stand Inst 2 European Committee for Standardization (2005) EN 1993-1-2: Eurocode 3: design of steel structures—part 1–2: general rules—structural fire design. Br Stand Inst 2
16.
go back to reference Welch S, Miles S, Kumar S et al (2008) FIRESTRUC—integrating advanced three-dimensional modelling methodologies for predicting thermo-mechanical behaviour of steel and composite structures subjected to natural fires. In: Fire safety science, pp 1315–1326CrossRef Welch S, Miles S, Kumar S et al (2008) FIRESTRUC—integrating advanced three-dimensional modelling methodologies for predicting thermo-mechanical behaviour of steel and composite structures subjected to natural fires. In: Fire safety science, pp 1315–1326CrossRef
17.
go back to reference European Committee for Standardization (2002) EN 1991-1-2: Eurocode 1: actions on structures—part 1–2: general actions—actions on structures exposed to fire. Br Stand Inst European Committee for Standardization (2002) EN 1991-1-2: Eurocode 1: actions on structures—part 1–2: general actions—actions on structures exposed to fire. Br Stand Inst
18.
go back to reference Proceedings of 19th international ship and offshore structures congress (ISSC 2015). MAR STRUCT (2015) Proceedings of 19th international ship and offshore structures congress (ISSC 2015). MAR STRUCT (2015)
19.
go back to reference American Bureau of Shipping (2013) Guidance notes on accidental load analysis and design for offshore structures. Houston, TX American Bureau of Shipping (2013) Guidance notes on accidental load analysis and design for offshore structures. Houston, TX
20.
go back to reference International Maritime Organization (2006) Guidelines on alternative design and arrangements for fire safety. Ref. T1/4.02 MSC.1/Circ.1212 International Maritime Organization (2006) Guidelines on alternative design and arrangements for fire safety. Ref. T1/4.02 MSC.1/Circ.1212
24.
go back to reference Cook R, Malkus D, Plesha M, Witt R (2002) Concepts and applications of finite element analysis, 4th edn. John Wiley & Sons, Inc Cook R, Malkus D, Plesha M, Witt R (2002) Concepts and applications of finite element analysis, 4th edn. John Wiley & Sons, Inc
25.
go back to reference Reddy JN (2014) An introduction to nonlinear finite element analysis: with applications to heat transfer, fluid mechanics, and solid mechanics, 2nd edn. Oxford University Press Reddy JN (2014) An introduction to nonlinear finite element analysis: with applications to heat transfer, fluid mechanics, and solid mechanics, 2nd edn. Oxford University Press
27.
go back to reference Osizik M (1994) Finite difference methods in heat transfer, 1st edn. CRC Press, Boca Raton Osizik M (1994) Finite difference methods in heat transfer, 1st edn. CRC Press, Boca Raton
28.
go back to reference Vassart O, Zhao B, Cajot L, Robert F, Meyer U, Frangi A (2014) Eurocodes: background & applications structural fire design. Report EUR 26698 EN, European Commission, Joint Research Centre, Institute for the Protection and Security of the Citizen Vassart O, Zhao B, Cajot L, Robert F, Meyer U, Frangi A (2014) Eurocodes: background & applications structural fire design. Report EUR 26698 EN, European Commission, Joint Research Centre, Institute for the Protection and Security of the Citizen
29.
go back to reference Hurley MJ, Gottuk D, Hall JR et al (2016) SFPE handbook of fire protection engineering, 5th edn. Springer, New YorkCrossRef Hurley MJ, Gottuk D, Hall JR et al (2016) SFPE handbook of fire protection engineering, 5th edn. Springer, New YorkCrossRef
37.
go back to reference Sundén B, Faghri M (2008) Transport phenomena in fires, 1st edn. WIT Press, AshurstCrossRef Sundén B, Faghri M (2008) Transport phenomena in fires, 1st edn. WIT Press, AshurstCrossRef
40.
go back to reference Fleury R (2010) Evaluation of thermal radiation models for fire spread between objects. MSc Thesis, Department of Civil and Natural Resources Engineering, University of Canterbury, Christchurch, New Zealand. http://hdl.handle.net/10092/4959 Fleury R (2010) Evaluation of thermal radiation models for fire spread between objects. MSc Thesis, Department of Civil and Natural Resources Engineering, University of Canterbury, Christchurch, New Zealand. http://​hdl.​handle.​net/​10092/​4959
Metadata
Title
Ellipsoidal Solid Flame Model for Structures Under Localized Fire
Authors
Miguel R. Manco
Murilo A. Vaz
Julio C. R. Cyrino
Alexandre Landesmann
Publication date
06-07-2018
Publisher
Springer US
Published in
Fire Technology / Issue 6/2018
Print ISSN: 0015-2684
Electronic ISSN: 1572-8099
DOI
https://doi.org/10.1007/s10694-018-0750-y

Other articles of this Issue 6/2018

Fire Technology 6/2018 Go to the issue