Heating Temperature Prediction of Concrete Structure Damaged by Fire Using a Bayesian Approach

Author:

Cho Hae-Chang,Han Sun-JinORCID,Heo Inwook,Kang Hyun,Kang Won-HeeORCID,Kim Kang SuORCID

Abstract

A fire that occurs in a reinforced concrete (RC) structure accompanies a heating temperature, and this negatively affects the concrete material properties, such as the compressive strength, the bond between cement paste and aggregate, and the cracking and spalling of concrete. To appropriately measure the reduced structural performance and durability of fire-damaged RC structures, it is important to accurately estimate the heating temperature of the structure. However, studies in the literature on RC structures damaged by fire have focused mostly on structural member tests at elevated temperatures to ensure the fire resistance or fire protection material development; studies on estimating the heating temperature are very limited except for the very few existing models. Therefore, in this study, a heating temperature estimation model for a reinforced concrete (RC) structure damaged by fire was developed using a statistical Bayesian parameter estimation approach. For the model development, a total of 77 concrete test specimens were utilized; based on them, a statistically highly accurate model has been developed. The usage of the proposed method in the framework of the 500 °C isotherm method in Eurocode 2 has been illustrated through an RC column resistance estimation application.

Funder

University of Seoul

Publisher

MDPI AG

Subject

Management, Monitoring, Policy and Law,Renewable Energy, Sustainability and the Environment,Geography, Planning and Development

Reference38 articles.

1. Microstructure of fire-damaged concrete. A case study

2. Fire-Resistance Tests-Elements of Building Construction-Part 1: General Requirements,1999

3. ASTM E119, Standard Methods of Fire Tests of Building Construction and Materials,2000

4. EN 1992-1-2, Eurocode 2: Design of Concrete Structures, Part 1-2: General Rules-Structural Fire Design,2004

5. Diagnosis and Repair Methods of Fire-Damaged Buildings,2004

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