Preview

Construction: Science and Education

Advanced search

Influence of dispersed reinforcement parameters on the high-strength steel fiber concrete creep perfomance

https://doi.org/10.22227/2305-5502.2023.1.7

Abstract

Introduction. At the present time, in the construction of nuclear power plants (NPP), non-removable formwork made of high-strength steel fibre concrete (SFRC) is used. Due to improved physical and mechanical properties and high adhesion to monolithic concrete, the SFRC formwork is a load-bearing element. The result is a structure with combined reinforcement in the form of bar reinforcement and high-strength SRFC layers. The calculation of the actual stress-strain state of such structures requires knowing the design characteristics of used materials. High-strength SFRC is understudied material, and research of its properties, especially under long-term loads, is a crucial task.

Materials and methods. Experimental studies of the effect of dispersion reinforcement parameters (type of steel fibre and its volume) on the creep value of SFRC made on a high-strength cement-sand matrix have been carried out. The research was carried out on the same matrix composition for three types of steel fibres suitable for the manufacture of 30 mm formwork sheets with a thickness of 30 mm, and most commonly found the in Russian market. A volumetric fibre content of up to 6 % was considered in the study. The load level is 0.3 of the breaking strength (prism strength).

Results. The actual values of the SFRC creep parameters required to carry out the calculations of structures with combined reinforcement.

Conclusions. It is found that the introduction of steel fiber up to 6 % provides a reduction of ultimate creep measure up to 20 % as compared to a fine-grained matrix. However, with up to 1.5 % volumetric content of fibre, an increase of up to 10 % in creep may also occur as a result of matrix decompaction. In the view of the large number of factors affecting the properties of SFRC, the calculated characteristics should be determined experimentally.

About the Author

Dmitriy E. Kapustin
Moscow State University of Civil Engineering (National Research University) (MGSU)
Russian Federation

Candidate of Technical Sciences, Associate Professor, Associate Professor of the Department of Facility Testing

  • Scopus: 57204881560


References

1. Rabinovich F.N. Composites based on dispersed reinforced concrete. Questions of theory and design, technology, construction : monografiya . Moscow, ASV Publ., 2011; 642. (rus.).

2. Dorf V.A., Krasnovskiy R.O., Kapustin D.E. On the way to the implementation of the technology for the construction of buildings and structures of nuclear power plants from reinforced concrete blocks with non-removable steel-fiber-reinforced concrete formwork. Construction in the Nuclear Industry. 2020; 1:47-54. URL: https://www.elibrary.ru/item.asp?id=21641326 (rus.).

3. Kapustin D.E. Strength and deformation characteristics of non-removable steel-fiber-reinforced concrete formwork as a bearing element of reinforced concrete structures. Moscow, 2015; 211 (rus.).

4. Tamrazyan A.G. Rigidity of bending reinforced concrete elements taking into account nonlinear creep of high strengths concrete on the basis of is viscous-elastic model of hereditary ageing. Vestnik MGSU [Monthly Journal on Construction and Architecture]. 2011; 2(1):121-126. URL: https://www.elibrary.ru/item.asp?id=17586454 (rus.).

5. Domarova E.V. Influence of creep on the stress-strain state of reinforced concrete multistory buildings. Building and Reconstruction. 2022; 3(101):14-22. URL: https://construction.elpub.ru/jour/article/view/475 (rus.).

6. Bourne-Webb P.J. The role of concrete creep under sustained loading, during thermo-mechanical testing of energy piles. Computers and Geotechnics. 2020; 118:103309. DOI: 10.1016/j.compgeo.2019.103309

7. Torres P.P., Ghorbel E., Wardeh G. Towards a new analytical creep model for cement-based concrete using design standarts approach. Buildings. 2021; 11:155. DOI: 10.3390/buildings11040155

8. Yuqi Zhou, Weiyi Chen, Peiyu Yan. Measu­rement and modeling of creep property of high-strength concrete considering stress relaxation effect. Journal of Building Engineering. 2022; 56(9):104726. DOI: 10.1016/j.jobe.2022.104726

9. Wang Hui, Wang Yue. Review on self-compacting concrete creep. IOP Conference Series Earth and Environmental Science. 2021; 634:012112. DOI 10.1088/1755-1315/634/1/012112

10. Moiseenko G.A. Changes in the prismatic strength and elastic modulus of high-strength steel fiber concrete and its matrix depending on the age. Construction Materials. 2020; 6:13-17. DOI: 10.31659/0585-430X-2020-781-6-13-17 (rus.).

11. Bezgodov I.M. Studies of the physical and mechanical characteristics of high-strength concretes. Concrete Technologies. 2022; 4(183):31-36. (rus.).

12. Vijaya kumar Setti, Dean kumar B., Swami B.L.P. Creep Strain Behaviour of Triple-Blended Steel Fiber Self-Compacting Concrete. IOP Conference Series Earth and Environmental Science. 2022; 982(1):012010. DOI: 10.1088/1755-1315/982/1/012010

13. Muller H.S. Constitutive models for creep of concrete — from the past to the future. Industrial and civil construction. 2019; 3:55-69. DOI: 10.33622/0869-7019.2019.03.55-69

14. Karpenko N.I., Kaprielov S.S., Petrov A.N. Study of physical-mechanical and rheological properties of high-strength steel fiber reinforced concrete from self-compacting mixtures. Collection of scientific papers of the RAASN. Moscow, 2018; 2:237-246. DOI: 10.22337/9785432302663-237-246 (rus.).

15. Kaprielov S.S., Chilin I.A. Ultra-high-strength self-compacting fiber-reinforced concrete for monolithic structures. Construction Materials. 2013; 7:28-30 (rus.).

16. Smirnov D.A., Kharlab V.D. Linear creep of mature fi ber reinforced concrete. Bulletin of Civil Engineers. 2010; 4(25):56-60. URL: https://www.elibrary.ru/item.asp?id=15633247 (rus.).

17. Smirnov D.A. Calculation of steel fiber reinforced concrete statically indeterminate structures in view of creep. Bulletin of Civil Engineers. 2011; 3(28):51-54. URL: https://www.elibrary.ru/item.asp?id=17333079 (rus.).

18. Mangat P.S., Azari M.M. A theory for the creep of steel fibre reinforced cement compression. Journal of Material Science. 1985; 20:1119-1133. DOI: 10.1007/BF00585757

19. Elzaigh W.A. Steel concrete reinforced concrete ground slab. University of Pretoria. 2001; 2:2-1-2-25.

20. Nakov D. Experimental and Analytical Analysis of Creep of Steel Fibre Reinforced Concrete. Periodica Polytechnica Civil Engineering. 2018; 62(1):226-231. DOI: 10.3311/PPci.11184

21. Balaguru P., Ramakrishnan V. Properties of fiber reinforced concrete: Workability, behaviour under long-term loading and air-void characteristics. ACI Materials Journal. 1988; 85(3):189-196. URL: http://www.concrete.org/Publications/InternationalConcreteAbstractsPortal.aspx.aspx?m=details&i=1849


Review

For citations:


Kapustin D.E. Influence of dispersed reinforcement parameters on the high-strength steel fiber concrete creep perfomance. Construction: Science and Education. 2023;13(1):98-108. (In Russ.) https://doi.org/10.22227/2305-5502.2023.1.7

Views: 222


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2305-5502 (Online)