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Evaluation of the Long-Term Strength of Concrete in Building Structures

https://doi.org/10.22227/2949-1622.2024.2.12-21

Abstract

An approach to estimating the long-term strength of concrete in building structures in the calculation of reinforced concrete structures of buildings and structures of various types is proposed. The process of increasing the initial modulus of concrete deformations in time as a consequence of a certain physicochemical reaction of strength gain is considered. The function of the age of concrete is presented, taking into account the change in the modes of temperature effects during the period of hardening. It is shown that the entropy criterion of strength is more flexible compared to the criterion of the energy barrier of destruction. The application of the entropy strength criterion allows us to take into account the effect of temperature on the long-term strength of concrete.

About the Authors

V. I. Putlyaev
Lomonosov Moscow State University (MSU)
Russian Federation

Valery I. Putlyaev, Candidate of Sciences (Chemistry), Associate Professor of the Department of Interdisciplinary Materials Science, Faculty of Materials Sciences

119991, Moscow, Leninskie Gory st., 1, building 73 (laboratory building B)

RSCI (AutorID): 46039, Scopus: 6506886934



M. N. Berlinova
Moscow State University of Civil Engineering (National Research University) (MGSU)
Russian Federation

Marina N. Berlinova, Candidate of Technical Sciences, Associate Professor, Associate Professor of the Department of Reinforced Concrete and Masonry Structures

26 Yaroslavskoe shosse, Moscow, 129337

Scopus: 57192657313, ResearcherID: C-3590-2019



References

1. Green W., Chess P. Durability of Reinforced Concrete Structures. CRC Press, 2019.

2. Blikharskyy Y., Selejdak J., Kopiika N., Vashkevych R. Study of Concrete under Combined Action of Aggressive Environment and Long-Term Loading. Materials. 2021. No. 14 (21). Р. 6612.

3. Tamrazyan A.G., Orlova M.A. Experimental Studies of the Stress-Strain State of Reinforced Concrete Bending Elements with Cracks. Bulletin of Tomsk State University of Architecture and Civil Engineering. 2015. No. 6 (53). Pр. 98-105.

4. Tamrazyan A.G., Avetisyan L.A. Behavior of compressed reinforced concrete columns under thermodynamic influences taking into account increased concrete deformability. IOP Conference Series: Materials Science and Engineering. 2018. Vol. 365. Р. 052034.

5. Berlinov M., Berlinova M. Long-term durability of concrete structures. Journal of Physics: Conference Series. 2020. No. 1614 (1). Р. 012006.

6. Bambura A.N., Dorogova E.V. General Method for Estimating the Stress-Strain State and LoadBearing Capacity of Prestressed Reinforced Concrete Elements of a Circular Section by a Deformation Model. Bulletin of the Belarusian-Russian University. 2014. No. 3 (44). Pp. 105-112.

7. Tvorogova M.N. Resistance to deformation and destruction of reinforced concrete structures taking into account nonlinear and nonequilibrium properties and loading regimes : dissertation for the degree of Candidate of Technical Sciences. Moscow, 2006.

8. Bondarenko V.M., Bondarenko S.V. Engineering methods of nonlinear theory of reinforced concrete. Moscow, 1982. 287 p.

9. Levchenkov S.I. Physical and colloidal chemistry : lecture notes for students. Rostov-on-Don : RSU, 2008. 87 p.

10. Putlyaev V.I. Safronova T.V., Filippov Ya.Yu., Evdokimov P.V. Colloidal forming of reaction-bound calcium phosphate composites. Materials Science. 2016. No. 6. Pp. 39-45.

11. Nazarenko V.G., Tvorogova M.N. On the construction of concrete aging functions. Concrete and reinforced concrete. 2010. No. 6. Pp. 23-25.

12. Berlinova M.N., Bobrov V.V. Evaluation of the influence of destructive processes on the long-term strength of concrete. Industrial and civil construction. 2014. No. 6. Pp. 10-13.

13. Born M. Lectures on Atomic Mechanics (transl. from German). 2011. 312 p. (in Russian).

14. Chudnovsky A.I. Fundamentals of statistical theory of long-term strength : handbook for students of IV-V courses of aircraft engineering. fac. day study. Novosibirsk : NETI, 1977. Part 1. 105 p.

15. Berlinova M.N., Tvorogov A.V. Regime strength of concrete in building structures. Natural and technical sciences. 2015. No. 6 (84). Pp. 530-532.

16. Bondarenko S.V. Calculation of building structures according to loading regimes. Moscow : MISI, BTISM, 1982. 180 p.


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For citations:


Putlyaev V.I., Berlinova M.N. Evaluation of the Long-Term Strength of Concrete in Building Structures. Reinforced concrete structures. 2024;6(2):12-21. (In Russ.) https://doi.org/10.22227/2949-1622.2024.2.12-21

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ISSN 2949-1622 (Print)
ISSN 2949-1614 (Online)