Skip to main content
Top
Published in: Fire Technology 3/2011

01-07-2011

Simulation of Mass Fire-Spread in Urban Densely Built Areas Based on Irregular Coarse Cellular Automata

Author: Sijian Zhao

Published in: Fire Technology | Issue 3/2011

Log in

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

search-config
loading …

Abstract

Mass fire-spread is a potential threat to some densely built urban areas by its devastating destructions. Especially in case of a large earthquake when multiple fires break out simultaneously, fire-spread hazard is likely to overwhelm fire-fighting capabilities and enlarge damage area. To explore fire-spread behavior and assess its damages, a simulation model of fire-spread in densely built urban areas is developed. Cellular Automata (CA) is a Bottom-up dynamics model that can reproduce a complicated phenomenon by setting up simple rules in a cell space. However, the traditional grid-based cells of CA are not suitable for modeling building-to-building fire-spread behavior. Therefore, an irregular coarse CA schema is proposed in this paper. Two sub-processes are involved urban mass fire-spread, i.e. (I) fire-developing in a single building and (II) fire-spread among buildings. When a fire is developing in a single building, the building will experience 5 fire stages along time, which become the states of cell. While fire spreads among buildings, there are 2 spread patterns: (I) short-range direct flame contact, radiation and convection spread and (II) long-range firebrand spotting spread. In relation to the 2 spread patterns, 2 sets of neighborhoods and rules of CA are formulated respectively. To verify the newly developed model, 100 times of individual random simulations for a real site fire-spread in Kobe City after Hanshin Earthquake (1995, Japan) are performed using an integrated GIS-CA-fire tool developed in the paper. Comparing the simulation results with the local observations, the general feature of fire-spread is found similar, and it is proved that the newly developed model is reliable to simulate urban fire-spread. Furthermore, based on the simulated results, a loss assessment model is formulated to calculate economic and life losses after fire-spread.

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 William M. Pittts (1991) Wind Effects on Fires (Review). Progress in Energy and Combustion Science. 17:83-134.CrossRef William M. Pittts (1991) Wind Effects on Fires (Review). Progress in Energy and Combustion Science. 17:83-134.CrossRef
2.
go back to reference Charles Scawthorn, John M. Eidinger, Anshel J. Schiff (2005) Fire Following Earthquake ASCE Press. Charles Scawthorn, John M. Eidinger, Anshel J. Schiff (2005) Fire Following Earthquake ASCE Press.
3.
go back to reference Wai-fah Chen, Charles Scawthorn (2003). Earthquake Engineering Handbook, CRC Press. Wai-fah Chen, Charles Scawthorn (2003). Earthquake Engineering Handbook, CRC Press.
4.
go back to reference Rothermel RC (1983) How to predict the spread and intensity of forest and range fires. General Technical Report INT-143. Rothermel RC (1983) How to predict the spread and intensity of forest and range fires. General Technical Report INT-143.
5.
go back to reference Japan Association for Fire Science and Engineering (1997). Handbook of Fire. Kyoristu Publishing (In Japanese). Japan Association for Fire Science and Engineering (1997). Handbook of Fire. Kyoristu Publishing (In Japanese).
6.
go back to reference Namba J, Yasuno K (1986) A study on the fire spread model of wooden buildings in Japan. In: First safety science—proceedings of the first international symposium, pp 881–890. Namba J, Yasuno K (1986) A study on the fire spread model of wooden buildings in Japan. In: First safety science—proceedings of the first international symposium, pp 881–890.
7.
go back to reference Himoto K, Tanaka T (2000) A preliminary model for urban fire spread-building fire behavior under the influence of external heat and wind. In: Thirteenth meeting of the UJNR panel on fire research and safety, vol 2, pp 309–319. Himoto K, Tanaka T (2000) A preliminary model for urban fire spread-building fire behavior under the influence of external heat and wind. In: Thirteenth meeting of the UJNR panel on fire research and safety, vol 2, pp 309–319.
8.
go back to reference Himoto K, Tanaka T (2002) A physically-based model for urban fire spread. In: First safety science—proceedings of the seven international symposium, pp 129–140. Himoto K, Tanaka T (2002) A physically-based model for urban fire spread. In: First safety science—proceedings of the seven international symposium, pp 129–140.
9.
go back to reference Keisuke Himoto, Takeyoshi Tanaka (2008) Development and validation of a physics-based urban fire spread model. Fire Safety Journal 47: 477-494.CrossRef Keisuke Himoto, Takeyoshi Tanaka (2008) Development and validation of a physics-based urban fire spread model. Fire Safety Journal 47: 477-494.CrossRef
10.
go back to reference Lee S, Davidson R (2008) Modeling different modes of post-earthquake fire spread. In: Proceedings of the 14th world conference on earthquake engineering. Lee S, Davidson R (2008) Modeling different modes of post-earthquake fire spread. In: Proceedings of the 14th world conference on earthquake engineering.
11.
go back to reference Cousins, W., D. Heron and S. Mazzoni (2002). Estimating Risks from Fire Following Earthquake, Client Report 60 (New Zealand: Institute of Geological and Nuclear Sciences). Cousins, W., D. Heron and S. Mazzoni (2002). Estimating Risks from Fire Following Earthquake, Client Report 60 (New Zealand: Institute of Geological and Nuclear Sciences).
12.
go back to reference Akira Ohgai, Yoshimizu Gohnai, Kojiro Watanabe (2007) Cellular automata modeling of fire spread in built-up areas-A tool to aid community-based planning for disaster mitigation. Computers, Environment and Urban System 31: 441-460.CrossRef Akira Ohgai, Yoshimizu Gohnai, Kojiro Watanabe (2007) Cellular automata modeling of fire spread in built-up areas-A tool to aid community-based planning for disaster mitigation. Computers, Environment and Urban System 31: 441-460.CrossRef
13.
go back to reference W Fan et al. (1995). Concise study course of fire. University of Science and Technology of China Press. Hefei. China (In Chinese). W Fan et al. (1995). Concise study course of fire. University of Science and Technology of China Press. Hefei. China (In Chinese).
14.
go back to reference Fire Department of Kobe City (1996). Fire Situation following Hyogo-ken Nambu in Kobe City. Tokyo Press (In Japanese). Fire Department of Kobe City (1996). Fire Situation following Hyogo-ken Nambu in Kobe City. Tokyo Press (In Japanese).
15.
go back to reference Bernard Proterie, Nouredine Zekri, et al. (2007) Modeling forest fire spread and spotting process with small world networks. Comustion and Flame 149: 63-78.CrossRef Bernard Proterie, Nouredine Zekri, et al. (2007) Modeling forest fire spread and spotting process with small world networks. Comustion and Flame 149: 63-78.CrossRef
17.
go back to reference S. El-Yacoubi, A. El-Jai (2003) Notes on control and observation in cellular automata models. WSEAS Trans. Comput 2: 1086-1109. S. El-Yacoubi, A. El-Jai (2003) Notes on control and observation in cellular automata models. WSEAS Trans. Comput 2: 1086-1109.
18.
go back to reference T. Toffoli (1984). Cellular automata as an alternative to differential equation in modeling physics. Physica D 10:117–127.MathSciNetCrossRef T. Toffoli (1984). Cellular automata as an alternative to differential equation in modeling physics. Physica D 10:117–127.MathSciNetCrossRef
19.
go back to reference B. Chopard, M. Droz (1998). Cellular Automata Modeling of Physical Systems, Cambridge University Press.CrossRefMATH B. Chopard, M. Droz (1998). Cellular Automata Modeling of Physical Systems, Cambridge University Press.CrossRefMATH
20.
go back to reference R.J. Gaylord, K. Nishidate (1996). Modeling Nature. Cellular Automata Simulations with Mathematica. Springer-Verlag, New York. R.J. Gaylord, K. Nishidate (1996). Modeling Nature. Cellular Automata Simulations with Mathematica. Springer-Verlag, New York.
21.
go back to reference S. Wolfram (1994). Cellular Automata and Complexity: Collected Paper, Addison-Wesley Publishing Company. S. Wolfram (1994). Cellular Automata and Complexity: Collected Paper, Addison-Wesley Publishing Company.
22.
go back to reference M. Garzon (1995), Models of Massive Parallelism. Analysis of Cellular Automata and Neural Networks, Springer-Verlag, Berlin Heidelberg.MATH M. Garzon (1995), Models of Massive Parallelism. Analysis of Cellular Automata and Neural Networks, Springer-Verlag, Berlin Heidelberg.MATH
23.
go back to reference Yoshioka H., Hayashi Y., Masuda H. and Noguchi T. (2004). Real-scale Fire Wind Tunnel Experiment on Generation of Firebrands from a House on Fire. Fire Science and Technology 23(2): 142-150.CrossRef Yoshioka H., Hayashi Y., Masuda H. and Noguchi T. (2004). Real-scale Fire Wind Tunnel Experiment on Generation of Firebrands from a House on Fire. Fire Science and Technology 23(2): 142-150.CrossRef
24.
go back to reference Waterman T. (1969). Experimental Study of Firebrand Generation. IIT Research Institute, Project J6130. Chicago, IL. Waterman T. (1969). Experimental Study of Firebrand Generation. IIT Research Institute, Project J6130. Chicago, IL.
25.
go back to reference Bryant R. and Mulholland G. (2008). A Guide to Charactering Heat Release Rate Measurement Uncertainty for Full-scale Fire Tests. Fire and Materials 32: 121-139.CrossRef Bryant R. and Mulholland G. (2008). A Guide to Charactering Heat Release Rate Measurement Uncertainty for Full-scale Fire Tests. Fire and Materials 32: 121-139.CrossRef
26.
go back to reference Aiping Tang and Aihua Wen (2009). An intelligent simulation system for earthquake disaster assessment. Computers & Geosciences, 35(5): 871-879.CrossRef Aiping Tang and Aihua Wen (2009). An intelligent simulation system for earthquake disaster assessment. Computers & Geosciences, 35(5): 871-879.CrossRef
Metadata
Title
Simulation of Mass Fire-Spread in Urban Densely Built Areas Based on Irregular Coarse Cellular Automata
Author
Sijian Zhao
Publication date
01-07-2011
Publisher
Springer US
Published in
Fire Technology / Issue 3/2011
Print ISSN: 0015-2684
Electronic ISSN: 1572-8099
DOI
https://doi.org/10.1007/s10694-010-0187-4

Other articles of this Issue 3/2011

Fire Technology 3/2011 Go to the issue