Requirements for the Modeling of Medium-Term Behavior of Nuclear Containment Concrete for a “Loss of Coolant Accident” Analysis

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The objective of this research is to understand the behavior of concrete subjected to temperatures up to 180°C and to gas absolute pressures up to 5 bars applied during the two weeks envisioned in the “loss of coolant accident” (LOCA) scenario. Previous studies about delayed mechanical behavior of concrete have pointed out an increase of delayed strains with the temperature rise: the basic creep can be multiplied by a factor 10 at 80°C, and coupling between creep and heating can lead to damage and to transient thermal creep. These phenomena could be predominant if the LOCA induced conditions are maintained several days and more probably several weeks. So, a model able to predict the cracking and the gas leakages has to be developed. It has to consider these phenomena and their coupling with other possible causes of concrete damage previous to the LOCA. In fact, if the LOCA occurs on structure already damaged by early age cracking or endogenous chemical reactions, such as AAR or ettringite, the leakage risk could be increased. The paper will focus on some important aspects of these phenomena (creep rate dependency on temperature, scale effects at early age, damage induced by swelling reactions), and on their coupling in a finite element model.

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September 2016

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© 2016 Trans Tech Publications Ltd. All Rights Reserved

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[1] CEOS. fr 2009 French National research project for design and assessment of special concrete structure toward cracking and shrinkage.

Google Scholar

[2] Walvaren J 2012 Model Code 2010, final drafts FIB Bull. 1 & 2 105.

Google Scholar

[3] Sellier A, Multon S, Buffo-lacarrière L, Vidal T, Bourbon X and Camps G 2016 Concrete creep modelling for structural applications : non-linearity, multi-axiality, hydration, temperature and drying effects Cem. Concr. Res. 79 301–15.

DOI: 10.1016/j.cemconres.2015.10.001

Google Scholar

[4] Cagnon H, Vidal T, Sellier A, Bourbon X and Camps G 2015 Drying creep in cyclic humidity conditions Cem. Concr. Res. 76 91–7.

DOI: 10.1016/j.cemconres.2015.05.015

Google Scholar

[5] Ladaoui W, Vidal T, Sellier A and Bourbon X 2013 Analysis of interactions between damage and basic creep of HPC and HPFRC heated between 20 and 80 °C Mater. Struct. 46 13–23.

DOI: 10.1617/s11527-012-9879-1

Google Scholar

[6] Vidal T, Sellier A, Ladaoui W and Bourbon X 2014 Effect of Temperature on the Basic Creep of High-Performance Concretes Heated between 20 and 80°C J. Mater. Civ. Eng. B4014002.

DOI: 10.1061/(asce)mt.1943-5533.0001063

Google Scholar

[7] Ladaoui W, Vidal T, Sellier A and Bourbon X 2010 Thermal activation of basic creep for HPC in the range 20°C 80°C Computational Modelling of Concrete Structures (CRC Press) p.513–8.

DOI: 10.1201/b10546-60

Google Scholar

[8] Buffo-Lacarrière L, Sellier A, Turatsinze A and Escadeillas G 2011 Finite element modelling of hardening concrete: application to the prediction of early age cracking for massive reinforced structures Mater. Struct. 44 1821–35.

DOI: 10.1617/s11527-011-9740-y

Google Scholar

[9] Multon S and Sellier A 2016 Cement and Concrete Research Multi-scale analysis of alkali – silica reaction ( ASR ): Impact of alkali leaching on scale effects affecting expansion tests Cem. Concr. Res. 81 122–33.

DOI: 10.1016/j.cemconres.2015.12.007

Google Scholar

[10] Salgues M, Sellier A, Multon S, Bourdarot E and Grimal E 2014 DEF modelling based on thermodynamic equilibria and ionic transfers for structural analysis Eur. J. Environ. Civ. Eng. 1–26.

Google Scholar

[11] Schutter G De and Taerwe L 1996 Degree of hydration-based description of mechanical properties of early age concrete Mater. Struct. 29 335–44.

DOI: 10.1007/bf02486341

Google Scholar

[12] Grimal E, Sellier A, Le Pape Y and Bourdarot E 2008 Creep, Shrinkage, and Anisotropic Damage in Alkali-Aggregate Reaction Swelling Mechanism-Part I: A Constitutive Model ACI Mater. Journal-American Concr. Inst. 105 227–35.

DOI: 10.14359/19818

Google Scholar

[13] Grimal E, Sellier a., Multon S, Le Pape Y and Bourdarot E 2010 Concrete modelling for expertise of structures affected by alkali aggregate reaction Cem. Concr. Res. 40 502–7.

DOI: 10.1016/j.cemconres.2009.09.007

Google Scholar

[14] Bouzabata H, Multon S, Sellier A and Houari H 2012 Swellings due to alkali-silica reaction and delayed ettringite formation: Characterisation of expansion isotropy and effect of moisture conditions Cem. Concr. Compos. 34 349–56.

DOI: 10.1016/j.cemconcomp.2011.10.006

Google Scholar

[15] CEOS. fr 2015 Comportement et Evaluation des Ouvrages Spéciaux Fissuration-Retrait : Recommandations pour la maîtrise des phénomènes de fissuration ed P des ponts et Chaussées (IREX).

DOI: 10.1016/s0152-9668(02)80031-6

Google Scholar

[16] Sellier A and Millard A 2014 Weakest link and localisation WL 2 : a method to conciliate probabilistic and energetic scale effects in numerical models Eur. J. Environ. Civ. Eng. 18 1177–91.

DOI: 10.1080/19648189.2014.906368

Google Scholar

[17] Rossi P, Wu X, Le Maou F and Belloc A 1994 Scale effect on concrete in tension. Mater. Struct. 27 437–44.

DOI: 10.1007/bf02473447

Google Scholar

[18] Sellier A, Casaux-Ginestet G, Buffo-Lacarrière L and Bourbon X 2013 Orthotropic Damage Coupled with Localised Crack Reclosure Processing. Part I: Constitutive Laws Eng. Fract. Mech. 97l 148–67.

DOI: 10.1016/j.engfracmech.2012.10.012

Google Scholar

[19] Sellier A, Casaux-Ginestet G, Buffo-Lacarrière L and Bourbon X 2013 Orthotropic Damage Coupled with Localized Crack Reclosure Processing. Part II: Applications Eng. Fract. Mech. 97 168–85.

DOI: 10.1016/j.engfracmech.2012.10.016

Google Scholar