Effects of Gamma-Ray Irradiation on Hardened Cement Mortar

Author:

Khmurovska Yuliia,Štemberk Petr,Sikorin Svyatoslav,Němeček Jiří,Jóźwiak-Niedźwiedzka Daria,Doleželová Magdaléna,Kaladkevich Yuliya,Pavalanski Eryk,Fatseyeu Viktar

Abstract

AbstractThe effect of gamma-ray irradiation on cement mortar properties is investigated in this study in order to understand the mechanism behind the strength and stiffness reduction, which may be significant according to the available researches. 60Co irradiation facility with the generating dose rate of 0.1–10 Gy/s and the total activity of 4.4·1015 Bq (120 kCi) was used to perform the irradiation, so that the total observed dose of the irradiated samples reached the values ranging from 12.0 to 15.0 MGy. An identical set of control samples was placed in the same laboratory conditions away from gamma radiation. The results of nanoindentation, X-ray diffraction analysis and mercury intrusion porosimetry of the irradiated and the control samples are shown and explained in detail in this study. The nanoindentation creep compliance and the nanoindentation elastic modulus of the irradiated and the control samples do not show any significant difference. The mineral composition obtained using the X-ray diffraction analysis of the irradiated and the control samples is also similar. The pore structure rearrangement and microcrack occurrence, which were evidenced by the mercury intrusion porosimetry and scanning electron microscopy, led to the porosity increase and may be attributed to the significant decrease of compressive strength.

Funder

Ministerstvo Školství, Mládeže a Tělovýchovy

Technologická Agentura České Republiky

Narodowe Centrum Badań i Rozwoju

České Vysoké Učení Technické v Praze

Horizon 2020 Framework Programme

Publisher

Springer Science and Business Media LLC

Subject

Ocean Engineering,Civil and Structural Engineering

Reference34 articles.

1. ACI Code Committee. (2008). Guide for modeling and calculating shrinkage and creep in hardened concrete. ACI Committee 209 (ACI 209.2R-08), American Concrete Institute, Farmington Hills, MI. http://www.civil.northwestern.edu/people/bazant/PDFs/Papers/R21.pdf.

2. Bažant, Z. P., & Jirásek, M. (2018). Creep and hygrothermal effects in concrete structures (Vol. 38). Dordrecht, The Netherlands: Springer.

3. CEB-FIP. (1991). Model code 1990: Final Draft - Vol. 3. CEB-Bulletin d'Information 203-205. Comite Euro-International Du Beton, Lausanne, Swizerland. https://books.google.cz/books/about/CEB_FIP_Model_Code_1990.html?id=N-VDAQAAIAAJ&redir_esc=y.

4. Chen, Y., Liu, P., & Yu, Z. (2018). Effects of environmental factors on concrete carbonation depth and compressive strength. Materials, 11(11), 2167.

5. Denisov, A., Dubrovskii, V., & Solovyov, V. (2012). Radiation resistance of mineral and polymer construction materials. Moscow: ZAO MEI Publ. House. (In Russian).

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