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논문 기본 정보

자료유형
학술저널
저자정보
A. Adjrad (University ‘‘Mouloud Mammeri’’ of Tizi-Ouzou) Y. Bouafia (University ‘‘Mouloud Mammeri’’ of Tizi-Ouzou) M. S. Kachi (University ‘‘Mouloud Mammeri’’ of Tizi-Ouzou) F. Ghazi (University ‘‘Mouloud Mammeri’’ of Tizi-Ouzou)
저널정보
한국콘크리트학회 International Journal of Concrete Structures and Materials International Journal of Concrete Structures and Materials Vol.10 No.3
발행연도
2016.9
수록면
373 - 381 (9page)

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초록· 키워드

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As part of this study, has been developed a numerical method which allows to establish abacuses connecting the normal force with bending moment for a circular section and therefore to predict the rupture of this type of section. This may be for reinforced concrete (traditional steel) or concrete reinforced with steel fibers. The numerical simulation was performed in nonlinear elasticity up to exhaustion of the bearing capacity of the section. The rupture modes considered occur by plasticization of the steel or rupture of the concrete (under compressive stresses or tensile stresses). Regarding the fiber-reinforced concrete, the rupture occurs, usually, by tearing of the fibers. The behavior laws of the different materials (concrete and steel) correspond to the real behavior. The influence of several parameters was investigated, namely; diameter of the section, concrete strength, type of steel, percentage of reinforcement and contribution of concrete in tension between two successive cracks of bending. A comparison was made with the behavior of a section considering the conventional diagrams of materials; provided by the BAEL rules. A second comparative study was performed for fibers reinforced section.

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Abstract
1. Introduction
2. Position of the Problem: Hypothesis
3. Modeling of the Circular Section
4. Calculation of Internal Forces
5. Practical Calculation of Internal Forces
6. Establishment of Loading Curves
7. Establishment of the Interaction Curve
8. Application to the Reinforced Concrete
9. Application to Steel Fibers Reinforced Concrete
10. Conclusion
References

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UCI(KEPA) : I410-ECN-0101-2017-532-001400911