Experimental and numerical investigation of fire hazard of vertical greenery systems

被引:1
作者
Karunaratne, Tharindu [1 ]
Han, Shousou [2 ]
Lau, Denvid [2 ]
Chow, Cheuk Lun [2 ]
机构
[1] Univ Brighton, Sch Architecture Technol & Engn, Brighton, England
[2] City Univ Hong Kong, Dept Architecture & Civil Engn, Hong Kong, Peoples R China
来源
JOURNAL OF BUILDING ENGINEERING | 2024年 / 95卷
关键词
Vertical greenery system; Green wall; Flammability; Upward fire spread; Fire dynamic simulator; SPREAD; BEHAVIOR; ROOFS;
D O I
10.1016/j.jobe.2024.110004
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This study investigates the fire hazard of vertical greenery systems (VGS) with experiments performed at the bench-scale and medium-scale followed by numerical simulations. Bench-scale tests were conducted in cone-calorimeter while the medium-scale experiments consisted of a test rig with dimensions 100 cm x 30 cm x 3 cm (height x width x depth). 28 cone-calorimeter tests were conducted under four cone heat flux levels, which represented four woodwool moisture content (MC) levels (between 8 % and 20 %) and four bulk densities (BD) of the fuel bed (between 50 kg/m 3 to 100 kg/m 3 ). Cone test results revealed that flammability was increased with the reduction of MC and BD under four flammability parameters, namely, the ignitability, combustibility, flame duration (FD) and consumability. The medium-scale experiments conducted with three different MCs and three different BDs showed that the UFS rate increases with the decrease of MC and BD. Average UFS rate was over 3.48 cm/s while the maximum temperatures along the fuel bed reached values over 700 degrees C in all scenarios. The medium-scale experiment scenarios were numerically simulated in the fire dynamic simulator (FDS) and the predicted upward fire spread rate showed good agreement with only slight deviations. However, the temperature recordings at different heights were overpredicted.
引用
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页数:19
相关论文
共 41 条
[1]   Knowledge mapping of research progress in vertical greenery systems (VGS) from 2000 to 2021 using CiteSpace based scientometric analysis [J].
Ahsan, Muhammad Mubashir ;
Cheng, Wei ;
Hussain, Aqsa Bilal ;
Chen, Xuefeng ;
Wajid, Basit Ali .
ENERGY AND BUILDINGS, 2022, 256
[2]   Convective heat transfer in fire spread through fine fuel beds [J].
Anderson, W. R. ;
Catchpole, E. A. ;
Butler, B. W. .
INTERNATIONAL JOURNAL OF WILDLAND FIRE, 2010, 19 (03) :284-298
[3]   On the emission of radiation by flames and corresponding absorption by vegetation in forest fires [J].
Boulet, P. ;
Parent, G. ;
Acem, Z. ;
Collin, A. ;
Sero-Guillaume, O. .
FIRE SAFETY JOURNAL, 2011, 46 (1-2) :21-26
[4]   Investigation of the role of bulk properties and in-bed structure in the flow regime of buoyancy-dominated flame spread in porous fuel beds [J].
Campbell-Lochrie, Zakary ;
Walker-Ravena, Carlos ;
Gallagher, Michael ;
Skowronski, Nicholas ;
Mueller, Eric V. ;
Hadden, Rory M. .
FIRE SAFETY JOURNAL, 2021, 120
[5]   The evapotranspiration process in green roofs: A review [J].
Cascone, Stefano ;
Coma, Julia ;
Gagliano, Antonio ;
Perez, Gabriel .
BUILDING AND ENVIRONMENT, 2019, 147 :337-355
[6]   FIRE BEHAVIOR EXPERIMENTS IN MIXED FUEL COMPLEXES [J].
CATCHPOLE, EA ;
CATCHPOLE, WR ;
ROTHERMEL, RC .
INTERNATIONAL JOURNAL OF WILDLAND FIRE, 1993, 3 (01) :45-57
[7]   Design for maintainability of high-rise vertical green facades [J].
Chew, Michael Y. L. ;
Conejos, Sheila ;
Bin Azril, Fikril Hakim .
BUILDING RESEARCH AND INFORMATION, 2019, 47 (04) :453-467
[8]   Simulating Smoke Filling in Big Halls by Computational Fluid Dynamics [J].
Chow, W. K. ;
Chow, C. L. ;
Li, S. S. .
MODELLING AND SIMULATION IN ENGINEERING, 2011, 2011
[9]   Towards a simplified fire dynamic simulator model to analyse fire spread between multiple informal settlement dwellings based on full-scale experiments [J].
Cicione, Antonio ;
Walls, Richard S. .
FIRE AND MATERIALS, 2021, 45 (06) :720-736
[10]   Studying the potential of energy saving through vertical greenery systems: Using EnergyPlus simulation program [J].
Dahanayake, K. W. D. Kalani C. ;
Chow, Cheuk Lun .
ENERGY AND BUILDINGS, 2017, 138 :47-59