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2024 | OriginalPaper | Buchkapitel

8. Gas Temperatures

verfasst von : Haukur Ingason, Ying Zhen Li, Anders Lönnermark

Erschienen in: Tunnel Fire Dynamics

Verlag: Springer International Publishing

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Abstract

Gas temperature is of great importance for the assessment of heat exposure to tunnel users and tunnel structures, estimation of fire detection time and possibility of fire spread and to design ventilation systems. In this chapter, the theory of fire plumes in ventilated flows is presented with a focus on the maximum ceiling gas temperature and its position in tunnel fires. The maximum ceiling excess gas temperature can be classified into two regions, depending on the ventilation velocity. Each can be divided into two subregions. The first subregion exhibits a linear increase which transits into a constant period, depending on the fire size, ventilation and effective tunnel height. The position of the maximum ceiling gas temperature is directly related to a dimensionless ventilation velocity. A theoretical analysis of the upper smoke layer is presented, and correlations for the distribution of ceiling gas temperature along the tunnel are given to support this analysis. Finally, a one-dimensional model of average gas temperatures in tunnel fires with longitudinal ventilation is presented.

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Literatur
1.
Zurück zum Zitat Carvel RO, Marlair G (2005) A history of fire incidents in tunnels. In: Beard AN, Carvel RO (eds) The handbook of tunnel fire safety. Thomas Telford Publishing, London, pp 3–41 Carvel RO, Marlair G (2005) A history of fire incidents in tunnels. In: Beard AN, Carvel RO (eds) The handbook of tunnel fire safety. Thomas Telford Publishing, London, pp 3–41
2.
Zurück zum Zitat International Organization for Standardization (1999) Fire-resistance tests – elements of building construction – part 1: general requirements, 1st edn. International Organization for Standardization International Organization for Standardization (1999) Fire-resistance tests – elements of building construction – part 1: general requirements, 1st edn. International Organization for Standardization
3.
Zurück zum Zitat European Committee for Standardization (1999) Fire resistance tests – part 2: alternative and additional procedures, 1st edn. European Committee for Standardization European Committee for Standardization (1999) Fire resistance tests – part 2: alternative and additional procedures, 1st edn. European Committee for Standardization
4.
Zurück zum Zitat Instituut TNO voor Bouwmaterialen en Bouwconstructies (1979) Beproeving van het gedrag bij verhitting van twee isolatiematerialen ter bescherming van tunnels bij brand. Instituut TNO voor Bouwmaterialen en Bouwconstructies, Delft Instituut TNO voor Bouwmaterialen en Bouwconstructies (1979) Beproeving van het gedrag bij verhitting van twee isolatiematerialen ter bescherming van tunnels bij brand. Instituut TNO voor Bouwmaterialen en Bouwconstructies, Delft
5.
Zurück zum Zitat Richtlinien für Ausstattung und Betrieb von Tunneln (RABT) (1985) Ausgabe 1985. Forschungsgesellschaft für Straßen- und Verkehrswesen Richtlinien für Ausstattung und Betrieb von Tunneln (RABT) (1985) Ausgabe 1985. Forschungsgesellschaft für Straßen- und Verkehrswesen
6.
Zurück zum Zitat Abschlussbericht zum BMVBS/BASt Forschungsvorhaben 15.0391/2003/ERB: Brandschutzverhalten von selbstverdich-tendem Beton (SVB) im Straßentunnelbau (2005). MFPA Leipzig, März Abschlussbericht zum BMVBS/BASt Forschungsvorhaben 15.0391/2003/ERB: Brandschutzverhalten von selbstverdich-tendem Beton (SVB) im Straßentunnelbau (2005). MFPA Leipzig, März
7.
Zurück zum Zitat Hoult DP, Fay JA, Forney LJ (1969) A theory of plume rise compared with field observations. J Air Pollut Control Assoc 19:585–590CrossRef Hoult DP, Fay JA, Forney LJ (1969) A theory of plume rise compared with field observations. J Air Pollut Control Assoc 19:585–590CrossRef
8.
Zurück zum Zitat Hoult DP, Weil JC (1972) Turbulent plume in a laminar cross flow. Atmos Environ 6(8):513–530CrossRef Hoult DP, Weil JC (1972) Turbulent plume in a laminar cross flow. Atmos Environ 6(8):513–530CrossRef
9.
Zurück zum Zitat Kurioka H, Oka Y, Satoh H, Sugawa O (2003) Fire properties in near field of square fire source with longitudinal ventilation in tunnels. Fire Saf J 38:319–340CrossRef Kurioka H, Oka Y, Satoh H, Sugawa O (2003) Fire properties in near field of square fire source with longitudinal ventilation in tunnels. Fire Saf J 38:319–340CrossRef
10.
Zurück zum Zitat Li YZ, Lei B, Ingason H (2011) The maximum temperature of buoyancy-driven smoke flow beneath the ceiling in tunnel fires. Fire Saf J 46(4):204–210CrossRef Li YZ, Lei B, Ingason H (2011) The maximum temperature of buoyancy-driven smoke flow beneath the ceiling in tunnel fires. Fire Saf J 46(4):204–210CrossRef
11.
Zurück zum Zitat Li YZ, Ingason H (2012) The maximum ceiling gas temperature in a large tunnel fire. Fire Saf J 48:38–48CrossRef Li YZ, Ingason H (2012) The maximum ceiling gas temperature in a large tunnel fire. Fire Saf J 48:38–48CrossRef
12.
Zurück zum Zitat Li YZ, Ingason H (2010) Maximum temperature beneath ceiling in a tunnel fire, SP report 2010:51. SP Technical Research Institute of Sweden Li YZ, Ingason H (2010) Maximum temperature beneath ceiling in a tunnel fire, SP report 2010:51. SP Technical Research Institute of Sweden
13.
Zurück zum Zitat Karlsson B, Quintier JG (2000) Enclosure fire dynamics. CRC Press, New York Karlsson B, Quintier JG (2000) Enclosure fire dynamics. CRC Press, New York
14.
Zurück zum Zitat Heskestad G (2008) Fire plumes, flame height, and air entrainment. In: DiNenno PJ, Drysdale D, Beyler CL et al (eds) The SFPE handbook of fire protection engineering, 4th edn. National Fire Protection Association, Quincy, pp 2-1–2-20 Heskestad G (2008) Fire plumes, flame height, and air entrainment. In: DiNenno PJ, Drysdale D, Beyler CL et al (eds) The SFPE handbook of fire protection engineering, 4th edn. National Fire Protection Association, Quincy, pp 2-1–2-20
15.
Zurück zum Zitat Zukoski EE (1985) Smoke movement and mixing in two-layer fire models. In: The 8th UJNR joint panel meeting on fire research and safety, Tsukuba, 13–17 June 1985 Zukoski EE (1985) Smoke movement and mixing in two-layer fire models. In: The 8th UJNR joint panel meeting on fire research and safety, Tsukuba, 13–17 June 1985
16.
Zurück zum Zitat Quintiere JG, Rinkinen WJ, Jones WW (1981) The effect of room openings on fire plume entrainment. Combust Sci Technol 26:193–201CrossRef Quintiere JG, Rinkinen WJ, Jones WW (1981) The effect of room openings on fire plume entrainment. Combust Sci Technol 26:193–201CrossRef
17.
Zurück zum Zitat AGA (1974) LNG safety program: interim report on phase II work. American Gas Association, Arlington AGA (1974) LNG safety program: interim report on phase II work. American Gas Association, Arlington
18.
Zurück zum Zitat Raj PPK, Moussa AN, Aravamudau K (1981) Experiments involving pool and vapor fires from spills of liquidified natural gas on water. Prepared for U.S. Department of Transportation, U.S. Coast Guard, Report No. CG-D-55-79 Raj PPK, Moussa AN, Aravamudau K (1981) Experiments involving pool and vapor fires from spills of liquidified natural gas on water. Prepared for U.S. Department of Transportation, U.S. Coast Guard, Report No. CG-D-55-79
19.
Zurück zum Zitat Tang F, Li L, Chen W, Tao C, Zhan Z (2017) Studies on ceiling maximum thermal smoke temperature and longitudinal decay in a tunnel fire with different transverse gas burner locations. Appl Therm Eng 110:1674–1681CrossRef Tang F, Li L, Chen W, Tao C, Zhan Z (2017) Studies on ceiling maximum thermal smoke temperature and longitudinal decay in a tunnel fire with different transverse gas burner locations. Appl Therm Eng 110:1674–1681CrossRef
20.
Zurück zum Zitat Gao Y, Zhu G, Gu S, Tao H, Zhao Y (2018) Experimental and numerical studies on ceiling maximum smoke temperature and longitudinal decay in a horseshoe shaped tunnel fire. Case Stud Thermal Eng 12:134–142CrossRef Gao Y, Zhu G, Gu S, Tao H, Zhao Y (2018) Experimental and numerical studies on ceiling maximum smoke temperature and longitudinal decay in a horseshoe shaped tunnel fire. Case Stud Thermal Eng 12:134–142CrossRef
21.
Zurück zum Zitat Lu K, Xia K, Shi C, Yang M, Wang J, Ding Y (2021) Investigation on the tunnel curvature effect upon the ceiling temperature of tunnel fires: a numerical simulation. Fire Technol 57:2839–2858CrossRef Lu K, Xia K, Shi C, Yang M, Wang J, Ding Y (2021) Investigation on the tunnel curvature effect upon the ceiling temperature of tunnel fires: a numerical simulation. Fire Technol 57:2839–2858CrossRef
22.
Zurück zum Zitat Pan R, Zhu G, Liang Z, Zhang G, Liu H, Zhou X (2020) Experimental study on the fire shape and maximum temperature beneath ceiling centerline in utility tunnel under the effect of curved sidewall. Tunn Undergr Space Technol 99:103304 Pan R, Zhu G, Liang Z, Zhang G, Liu H, Zhou X (2020) Experimental study on the fire shape and maximum temperature beneath ceiling centerline in utility tunnel under the effect of curved sidewall. Tunn Undergr Space Technol 99:103304
23.
Zurück zum Zitat Tang F, He Q, Chen L, Li P (2019) Experimental study on maximum smoke temperature beneath the ceiling induced by carriage fire in a tunnel with ceiling smoke extraction. Sustain Cities Soc 44:40–45CrossRef Tang F, He Q, Chen L, Li P (2019) Experimental study on maximum smoke temperature beneath the ceiling induced by carriage fire in a tunnel with ceiling smoke extraction. Sustain Cities Soc 44:40–45CrossRef
24.
Zurück zum Zitat Ji J, Bi Y, Venkatasubbaiah K, Li K (2016) Influence of aspect ratio of tunnel on smoke temperature distribution under ceiling in near field of fire source. Appl Therm Eng 106:1094–1102CrossRef Ji J, Bi Y, Venkatasubbaiah K, Li K (2016) Influence of aspect ratio of tunnel on smoke temperature distribution under ceiling in near field of fire source. Appl Therm Eng 106:1094–1102CrossRef
25.
Zurück zum Zitat Zhang T, Wang G, Hu H, Huang Y, Zhu K, Wu K (2021) Study on temperature decay characteristics of fire smoke backflow layer in tunnels with wide-shallow cross-section. Tunn Undergr Space Technol 112:103874 Zhang T, Wang G, Hu H, Huang Y, Zhu K, Wu K (2021) Study on temperature decay characteristics of fire smoke backflow layer in tunnels with wide-shallow cross-section. Tunn Undergr Space Technol 112:103874
26.
Zurück zum Zitat Li J, Li Y, Li J, Zhong H, Zhao J, Xu D (2023) Experimental analysis of the effect of the ramp slopes on the maximum exceedance temperature in a branched tunnel fire. Tunn Undergr Space Technol 131:104829CrossRef Li J, Li Y, Li J, Zhong H, Zhao J, Xu D (2023) Experimental analysis of the effect of the ramp slopes on the maximum exceedance temperature in a branched tunnel fire. Tunn Undergr Space Technol 131:104829CrossRef
27.
Zurück zum Zitat Jiao W, Chen C, Lei P, Zhang Y (2024) Experimental study on the effects of branch tunnel ventilation on the smoke movement and temperature characteristics in bifurcated tunnel fires. Tunn Undergr Space Technol 144:105529CrossRef Jiao W, Chen C, Lei P, Zhang Y (2024) Experimental study on the effects of branch tunnel ventilation on the smoke movement and temperature characteristics in bifurcated tunnel fires. Tunn Undergr Space Technol 144:105529CrossRef
28.
Zurück zum Zitat Lu X, Weng M, Liu F, Wang F, Han J, Chipok Cheung S (2022) Effect of bifurcation angle and fire location on smoke temperature profile in longitudinal ventilated bifurcated tunnel fires. Tunn Undergr Space Technol 127:104610CrossRef Lu X, Weng M, Liu F, Wang F, Han J, Chipok Cheung S (2022) Effect of bifurcation angle and fire location on smoke temperature profile in longitudinal ventilated bifurcated tunnel fires. Tunn Undergr Space Technol 127:104610CrossRef
29.
Zurück zum Zitat Lu X, Weng M, Liu F, Wang F, Han J, Cheung SC (2022) Study on smoke temperature profile in bifurcated tunnel fires with various bifurcation angles under natural ventilation. J Wind Eng Ind Aerodyn 225:105001CrossRef Lu X, Weng M, Liu F, Wang F, Han J, Cheung SC (2022) Study on smoke temperature profile in bifurcated tunnel fires with various bifurcation angles under natural ventilation. J Wind Eng Ind Aerodyn 225:105001CrossRef
30.
Zurück zum Zitat Tang F, Cao ZL, Chen Q, Meng N, Wang Q, Fan CG (2017) Effect of blockage-heat source distance on maximum temperature of buoyancy-induced smoke flow beneath ceiling in a longitudinal ventilated tunnel. Int J Heat Mass Transf 109:683–688CrossRef Tang F, Cao ZL, Chen Q, Meng N, Wang Q, Fan CG (2017) Effect of blockage-heat source distance on maximum temperature of buoyancy-induced smoke flow beneath ceiling in a longitudinal ventilated tunnel. Int J Heat Mass Transf 109:683–688CrossRef
31.
Zurück zum Zitat Chen C, Zhang Y, Lei P, Jiao W (2020) A study for predicting the maximum gas temperature beneath ceiling in sealing tactics against tunnel fire. Tunn Undergr Space Technol 98:103275CrossRef Chen C, Zhang Y, Lei P, Jiao W (2020) A study for predicting the maximum gas temperature beneath ceiling in sealing tactics against tunnel fire. Tunn Undergr Space Technol 98:103275CrossRef
32.
Zurück zum Zitat Li Q, Kang J, Wang Y, Feng Y (2023) Experimental study on the effect of sealing behavior on smoke temperature characteristics in tunnel fires. Thermal Sci Eng Progress 40:101784CrossRef Li Q, Kang J, Wang Y, Feng Y (2023) Experimental study on the effect of sealing behavior on smoke temperature characteristics in tunnel fires. Thermal Sci Eng Progress 40:101784CrossRef
33.
Zurück zum Zitat Yao Y, He K, Peng M, Shi L, Cheng X, Zhang H (2018) Maximum gas temperature rise beneath the ceiling in a portals-sealed tunnel fire. Tunn Undergr Space Technol 80:10–15CrossRef Yao Y, He K, Peng M, Shi L, Cheng X, Zhang H (2018) Maximum gas temperature rise beneath the ceiling in a portals-sealed tunnel fire. Tunn Undergr Space Technol 80:10–15CrossRef
34.
Zurück zum Zitat Zhou Y, Chen F, Geng Z, Bu R, Gong W, Fan C, Yi L (2021) Experimental study on the characteristics of temperature distribution of two pool fires with different transverse locations in a naturally ventilated tunnel. Tunn Undergr Space Technol 116:104095CrossRef Zhou Y, Chen F, Geng Z, Bu R, Gong W, Fan C, Yi L (2021) Experimental study on the characteristics of temperature distribution of two pool fires with different transverse locations in a naturally ventilated tunnel. Tunn Undergr Space Technol 116:104095CrossRef
35.
Zurück zum Zitat He K, Li YZ, Ingason H, Shi L, Cheng X (2024) Experimental study on the maximum ceiling gas temperature driven by double fires in a tunnel with natural ventilation. Tunn Undergr Space Technol 144:105550CrossRef He K, Li YZ, Ingason H, Shi L, Cheng X (2024) Experimental study on the maximum ceiling gas temperature driven by double fires in a tunnel with natural ventilation. Tunn Undergr Space Technol 144:105550CrossRef
36.
Zurück zum Zitat Guo C, Zhang T, Guo Q, Yu T, Fang Z, Yan Z (2023) Full-scale experimental study on fire characteristics induced by double fire sources in a two-lane road tunnel. Tunn Undergr Space Technol 131:104768CrossRef Guo C, Zhang T, Guo Q, Yu T, Fang Z, Yan Z (2023) Full-scale experimental study on fire characteristics induced by double fire sources in a two-lane road tunnel. Tunn Undergr Space Technol 131:104768CrossRef
37.
Zurück zum Zitat Gong L, Jiang L, Li S, Shen N, Zhang Y, Sun J (2016) Theoretical and experimental study on longitudinal smoke temperature distribution in tunnel fires. Int J Therm Sci 102:319–328CrossRef Gong L, Jiang L, Li S, Shen N, Zhang Y, Sun J (2016) Theoretical and experimental study on longitudinal smoke temperature distribution in tunnel fires. Int J Therm Sci 102:319–328CrossRef
38.
Zurück zum Zitat Li YZ, Ingason H (2016) New models for calculating maximum gas temperatures in large tunnel fires, SP Report 2016:95. SP Technical Research Institute of Sweden. Li YZ, Ingason H (2016) New models for calculating maximum gas temperatures in large tunnel fires, SP Report 2016:95. SP Technical Research Institute of Sweden.
39.
Zurück zum Zitat Li YZ, Ingason H (2018) Model scale tunnel fire tests on maximum ceiling gas temperature for structural protection, RISE Rapport 2018:58. RISE Research Institutes of Sweden. Li YZ, Ingason H (2018) Model scale tunnel fire tests on maximum ceiling gas temperature for structural protection, RISE Rapport 2018:58. RISE Research Institutes of Sweden.
40.
Zurück zum Zitat McCaffrey BJ (1979) Purely buoyant diffusion flames: some experimental results. NBS IR 79-1910. National Bureau of Standards, Washington, DC McCaffrey BJ (1979) Purely buoyant diffusion flames: some experimental results. NBS IR 79-1910. National Bureau of Standards, Washington, DC
41.
Zurück zum Zitat Ingason H, Lönnermark A, Li YZ (2011) Runehamar tunnel fire tests, SP Report 2011:55. SP Technical Research Institute. Ingason H, Lönnermark A, Li YZ (2011) Runehamar tunnel fire tests, SP Report 2011:55. SP Technical Research Institute.
42.
Zurück zum Zitat Memorial Tunnel Fire Ventilation Test Program – Test Report (1995) Massachusetts Highway Department and Federal Highway Administration Memorial Tunnel Fire Ventilation Test Program – Test Report (1995) Massachusetts Highway Department and Federal Highway Administration
43.
Zurück zum Zitat Li YZ, Ingason H (2014) Position of maximum ceiling temperature in a tunnel fire. Fire Technol 50:889–905CrossRef Li YZ, Ingason H (2014) Position of maximum ceiling temperature in a tunnel fire. Fire Technol 50:889–905CrossRef
44.
Zurück zum Zitat Li YZ, Lei B, Ingason H (2010) Study of critical velocity and backlayering length in longitudinally ventilated tunnel fires. Fire Saf J 45:361–370CrossRef Li YZ, Lei B, Ingason H (2010) Study of critical velocity and backlayering length in longitudinally ventilated tunnel fires. Fire Saf J 45:361–370CrossRef
45.
Zurück zum Zitat Guo Q, Li YZ, Ingason H, Yan Z, Zhu H (2021) Theoretical studies on buoyancy-driven ceiling jets of tunnel fires with natural ventilation. Fire Saf J 119:103228CrossRef Guo Q, Li YZ, Ingason H, Yan Z, Zhu H (2021) Theoretical studies on buoyancy-driven ceiling jets of tunnel fires with natural ventilation. Fire Saf J 119:103228CrossRef
46.
Zurück zum Zitat Delichatsios MA (1981) The flow of fire gases under a beamed ceiling. Combust Flame 43:1–10CrossRef Delichatsios MA (1981) The flow of fire gases under a beamed ceiling. Combust Flame 43:1–10CrossRef
47.
Zurück zum Zitat Li YZ, Ingason H (2015) Fire-induced ceiling jet characteristics in tunnels under different ventilation conditions, SP report 2015:23. SP Technical Research Institute of Sweden, Borås Li YZ, Ingason H (2015) Fire-induced ceiling jet characteristics in tunnels under different ventilation conditions, SP report 2015:23. SP Technical Research Institute of Sweden, Borås
48.
Zurück zum Zitat Ingason H, Li YZ (2010) Model scale tunnel fire tests with longitudinal ventilation. Fire Saf J 45:371–384CrossRef Ingason H, Li YZ (2010) Model scale tunnel fire tests with longitudinal ventilation. Fire Saf J 45:371–384CrossRef
49.
Zurück zum Zitat Ingason H, Lönnermark A (2005) Heat release rates from heavy goods vehicle trailers in tunnels. Fire Saf J 40:646–668CrossRef Ingason H, Lönnermark A (2005) Heat release rates from heavy goods vehicle trailers in tunnels. Fire Saf J 40:646–668CrossRef
Metadaten
Titel
Gas Temperatures
verfasst von
Haukur Ingason
Ying Zhen Li
Anders Lönnermark
Copyright-Jahr
2024
DOI
https://doi.org/10.1007/978-3-031-53923-7_8