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Probabilistic study of the resistance of a simply-supported reinforced concrete slab according to Eurocode parametric fire

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Title: Probabilistic study of the resistance of a simply-supported reinforced concrete slab according to Eurocode parametric fire
Authors: Heidari, M
Robert, F
Lange, D
Rein, G
Item Type: Journal Article
Abstract: We present the application of a simple probabilistic methodology to determine the reliability of a structural element exposed to fire when designed following Eurocode 1-1-2 (EC1). Eurocodes are being used extensively within the European Union in the design of many buildings and structures. Here, the methodology is applied to a simply-supported, reinforced concrete slab 180 mm thick, with a standard load bearing fire resistance of 90 min. The slab is subjected to a fire in an office compartment of 420 m 2 floor area and 4 m height. Temperature time curves are produced using the EC1 parametric fire curve, which assumes uniform temperature and a uniform burning condition for the fire. Heat transfer calculations identify the plausible worst case scenarios in terms of maximum rebar temperature. We found that a ventilation-controlled fire with opening factor 0.02 m 1/2 results in a maximum rebar temperature of 448°C after 102 min of fire exposure. Sensitivity analyses to the main parameters in the EC1 fire curves and in the EC1 heat transfer calculations are performed using a one-at-a-time (OAT) method. The failure probability is then calculated for a series of input parameters using the Monte Carlo method. The results show that this slab has a 0.3% probability of failure when the compartment is designed with all layers of safety in place (detection and sprinkler systems, safe access route, and fire fighting devices are available). Unavailability of sprinkler systems results in a 1% probability of failure. When both sprinkler system and detection are not available in the building, the probability of failure is 8%. This novel study conducts for the first time a probabilistic calculation using the EC1 parametric curve, helping engineers to identify the most critical design fires and the probabilistic resistance assumed in EC1.
Issue Date: 1-Jul-2019
Date of Acceptance: 12-Jan-2018
URI: http://hdl.handle.net/10044/1/58427
DOI: https://dx.doi.org/10.1007/s10694-018-0704-4
ISSN: 0015-2684
Publisher: Springer
Start Page: 1377
End Page: 1404
Journal / Book Title: Fire Technology
Volume: 55
Issue: 4
Copyright Statement: © 2018 The Author(s). Open Access. This article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
Sponsor/Funder: CERIB - Centre d'Etudes et de Rechereches de l'Industrie du Beton
Funder's Grant Number: Imperial College agreement
Keywords: Science & Technology
Technology
Engineering, Multidisciplinary
Materials Science, Multidisciplinary
Engineering
Materials Science
Structural fire resistance
Concrete
Parametric temperature-time curve
OAT method
Monte Carlo
Sensitivity analysis
Probabilistic analysis
Structural reliability
09 Engineering
Civil Engineering
Publication Status: Published
Open Access location: https://doi.org/10.1007/s10694-018-0704-4
Online Publication Date: 2018-03-24
Appears in Collections:Mechanical Engineering
Faculty of Engineering