Parameter Analysis of the Reinforcement for the Width and Spacing Control of the Early-Age Cracks in Concrete

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Early-age volume changes in concrete induced by temperature change, hydration, autogenous and drying shrinkage can lead to concrete cracking and this can have lasting effects on serviceability, durability or aesthetics of the structure. The restraint to thermal movement is the product of the coefficient of the temperature fall from a peak level during cement hydration and a restraint factor. In most cases it is not necessary and also not economical to avoid cracks. In these cases, crack widths are limited due to water tightness, durability or aesthetic reasons. If early-age thermal cracking cannot be prevented, crack width can be controlled with reinforcement. The reinforcement distributes cracks and consequently reduces their widths and spacing. As a result, there forms a large number of smaller cracks instead of a few through-cracks. This means, that due to the formation of fine cracks, the strain capacity of a reinforced concrete element before the occurrence of through cracks can be increased with the help of skin reinforcement. This paper discusses the parameters of reinforcement affecting the width and spacing of early-age cracks in concrete. The effect of reinforcement on early-age cracking in concrete was investigated on numerical simulation and in full-scale experiments. The test variables were the reinforcement ratio and the cover thickness of the longitudinal reinforcing bars.

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14-27

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May 2016

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© 2016 Trans Tech Publications Ltd. All Rights Reserved

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[1] Bamforth, P. B.: Early age thermal crack control, CIRIA C660, London 2007, 23 pp.

Google Scholar

[2] Hansen, W.: Report on Early-Age Cracking. Concrete International, March 2011, pp.48-51.

Google Scholar

[3] Baetens, B., Schlangen, E., van Beek, T., Roelfstra, P., Bijen, J.: Computer simulation for Concrete Temperature Control. Concrete International, December 2002, pp.43-48.

Google Scholar

[4] Kozikowski, R. L, Suprenant, B. A.: Controlling Early-Age Cracking in Mass Concrete. Concrete International, March 2015, pp.59-62.

Google Scholar

[5] EN 1992-3: Eurocode 2 - Design of concrete structures - Part 3: Liquid retaining and containment structures. June 2006. 23 pp.

Google Scholar

[6] Thelandersson, S., Alemo, J., Nagy, A.: Cracking of concrete structures due to imposed strains with regard to design of reinforcement. Materials and Structures, Vol. 31, August-September 1998, pp.442-450.

DOI: 10.1007/bf02480467

Google Scholar

[7] DIN EN 1992-1-1/NA: Eurocode 2: Bemessung und Konstruktion von Stahlbeton- und Spannbetontragwerken - Teil 1-1: Allgemeine Bemessungsregeln und Regeln für Hochbau; Nationaler Anhang, Berlin, (2010).

DOI: 10.1002/9783433605103.part2

Google Scholar

[8] EN 1992-1-1: Eurocode 2. Design of concrete structures - Part 1-1: General rules and rules for buildings, Brussels, (2004).

Google Scholar

[9] FENYVESI, O.: Early age shrinkage cracking of concretes, In: Conference of Junior Researchers in Civil Engineering, Budapest, Hungary 2012 , pp.51-57.

Google Scholar

[10] FINGERLOOS, F.: Der Eurocode 2 für Deutschlad - Erläuterungen und Hintergründe, Teil 3: Begrenzung der Spannungen, Rissbreiten und Verformungen, Beton- und Stahlbetonbau 105, Bd. 8, pp.486-495, (2010).

DOI: 10.1002/best.201000039

Google Scholar

[11] SmeBV (2012): Guideline for the Watertight Concrete Structures–White Tanks (in Slovak), SKSI, Bratislava (2012).

Google Scholar

[12] STN EN 1992-1-1/NA: Eurocode 2. Design of concrete structures – Part 1-1: General rules and rules for buildings; National Annex, Bratislava, (2007).

DOI: 10.3403/30391838

Google Scholar