Delayed deformation of confinement buildings: 30‐Year in situ measured data and prediction with the next‐generation Eurocode‐2

Author:

Aili Abudushalamu1ORCID,Torrenti Jean‐Michel23ORCID,Barre Francis4,Caba Ludovic5

Affiliation:

1. Graduate School of Environmental Studies Nagoya University Nagoya Japan

2. Materials and Structure Department Université Gustave Eiffel Marne‐la‐Vallée Cedex 2 France

3. ESITC Paris France

4. Géodynamique et Structure Paris France

5. EDF DIPNN DT Lyon France

Abstract

AbstractBiaxially prestressed large concrete structures of the confinement building in nuclear power plants (NPPs) should meet the safety requirement for the extension of the service time. Long‐term delayed strains of concrete are one of the key factors determining the safety factor in these structures. This article presents 30‐year long in situ measurement results of strain evolution of confinement buildings in four different NPPs. The delayed strains are predicted at a material level using the next‐generation Eurocode‐2, and the influence of temperature as proposed by the fib model code 2010, making use of delayed strain characteristics of the corresponding concrete from a previous study. We found that the default law given in Eurocode underestimates the delayed strain. However, with the possibility of adjusting the shrinkage and creep laws, the prediction results fit with a good accuracy for the in situ measurement.

Publisher

Wiley

Subject

Mechanics of Materials,General Materials Science,Building and Construction,Civil and Structural Engineering

Reference46 articles.

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2. Ageing and air leakage assessment of a nuclear reactor containment mock-up: VERCORS 2nd benchmark

3. Two models based on local microscopic relaxations to explain long-term basic creep of concrete

4. A dissolution-precipitation mechanism is at the origin of concrete creep in moist environments

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