Stress Intensity Factor of Reinforced Concrete Beams in Bending
Abstract
:1. Introduction
2. Methods
2.1. Analytical Method
2.2. Numerical Calculation of the Stress Intensity Factor
3. Results and Discussion
3.1. Analytical Determination of the Stress State
- (i)
- The equilibrium equation of the beam’s cut-off part in the form of the sum of the projection of forces on the beam axis is as follows:
- (ii)
- The equilibrium equation in the form of the sum of the moments of all forces relative to the central axis of concrete has the form
- -
- finding the dimensionless moment from the Equation (16);
- -
- finding the dimensionless stress at the crack tip from the dimensionless load parameter at a known relative crack length (Figure 3);
- -
- finding from the Equation (15);
- -
- and then we determine from using (12).
3.2. Determination of the Stress Intensity Factor
3.3. Calculation Example
3.4. Numerical Calculation
4. Conclusions
- The analytical method for determining the stress intensity factor (SIF) with an initial and growing crack in bent reinforced concrete beams is proposed. The method is based on the assumption that the size of the stress concentration zone at the crack tip is determined by the equality of the nominal and local stresses at the end of this zone (Figure 1d). The method determines the value of the external moment starting from which the crack length increases.
- The results obtained make it possible to assess the bearing capacity of reinforced concrete beams with a crack and assess the crack resistance of the beam by the force criterion of fracture mechanics. The analytical calculation method is valid for beams of arbitrary cross-sections, but explicit dependencies and numerical results are given for rectangular cross-section beams, which are most often used. Numerical calculation of SIF is recommended for non-growing initial cracks or a low-stress level if the maximum compressive stresses in concrete do not exceed 70% of the ultimate compressive strength.
- The same problem is solved in a three-dimensional formulation by the FE method, considering the stress field’s peculiarities at the crack tip. The calculation results coincide with the analytical solutions.
- It was found that SIF decreases with increasing crack length in a reinforced concrete beam. Consequently, unstable crack propagation reduces its bearing capacity but does not lead to rapid beam destruction.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
References
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Nuguzhinov, Z.S.; Bakirov, Z.B.; Vatin, N.I.; Bakirov, M.Z.; Kurokhtina, I.A.; Tokanov, D.T.; Khabidolda, O. Stress Intensity Factor of Reinforced Concrete Beams in Bending. Buildings 2021, 11, 287. https://doi.org/10.3390/buildings11070287
Nuguzhinov ZS, Bakirov ZB, Vatin NI, Bakirov MZ, Kurokhtina IA, Tokanov DT, Khabidolda O. Stress Intensity Factor of Reinforced Concrete Beams in Bending. Buildings. 2021; 11(7):287. https://doi.org/10.3390/buildings11070287
Chicago/Turabian StyleNuguzhinov, Zhmagul Smagulovich, Zhetpisbay Bakirovich Bakirov, Nikolai Ivanovich Vatin, Madi Zhetpisbaevich Bakirov, Irina Alekseevna Kurokhtina, Daniyar Tokanovich Tokanov, and Omirkhan Khabidolda. 2021. "Stress Intensity Factor of Reinforced Concrete Beams in Bending" Buildings 11, no. 7: 287. https://doi.org/10.3390/buildings11070287
APA StyleNuguzhinov, Z. S., Bakirov, Z. B., Vatin, N. I., Bakirov, M. Z., Kurokhtina, I. A., Tokanov, D. T., & Khabidolda, O. (2021). Stress Intensity Factor of Reinforced Concrete Beams in Bending. Buildings, 11(7), 287. https://doi.org/10.3390/buildings11070287