Rectangular Spiral Binders Effect on Plastic Hinge Rotation Capacity in Reinforced Concrete Beams

10.14359/7532 ◽  
1968 ◽  
Vol 65 (12) ◽  
Sensors ◽  
2018 ◽  
Vol 18 (10) ◽  
pp. 3255 ◽  
Author(s):  
Fang Yuan ◽  
Mengcheng Chen

Fibre-reinforced polymer (FRP)-reinforced concrete members exhibit low ductility due to the linear-elastic behaviour of FRP materials. Concrete members reinforced by hybrid FRP–steel bars can improve strength and ductility simultaneously. In this study, the plastic hinge problem of hybrid FRP–steel reinforced concrete beams was numerically assessed through finite element analysis (FEA). Firstly, a finite element model was proposed to validate the numerical method by comparing the simulation results with the test results. Then, three plastic hinge regions—the rebar yielding zone, concrete crushing zone, and curvature localisation zone—of the hybrid reinforced concrete beams were analysed in detail. Finally, the effects of the main parameters, including the beam aspect ratio, concrete grade, steel yield strength, steel reinforcement ratio, steel hardening modulus, and FRP elastic modulus on the lengths of the three plastic zones, were systematically evaluated through parametric studies. It is determined that the hybrid reinforcement ratio exerts a significant effect on the plastic hinge lengths. The larger the hybrid reinforcement ratio, the larger is the extent of the rebar yielding zone and curvature localisation zone. It is also determined that the beam aspect ratio, concrete compressive strength, and steel hardening ratio exert significant positive effects on the length of the rebar yielding zone.


2013 ◽  
Vol 798-799 ◽  
pp. 374-377
Author(s):  
Shuan Jiang

The ultimate tendon stress is the key to calculation of flexural capacity in reinforced concrete beam prestressed with external FRP tendons (RCBPEFT). Based on the theory of equivalent plastic hinge zone, the general formulas for calculating the ultimate tendon stress increment and ultimate tendon stress in RCBPEFT are therefore proposed. Comparisons indicate that the predictions are in good agreement with the test results.


2021 ◽  
Vol 86 (789) ◽  
pp. 1519-1528
Author(s):  
Hideyoshi WATANABE ◽  
Tomoaki SUGIYAMA ◽  
Tomoya TAKAHASHI ◽  
Yoshitaka SAKAI ◽  
Takuya WAKITA ◽  
...  

2020 ◽  
Vol 207 ◽  
pp. 110242 ◽  
Author(s):  
Andrea Monserrat López ◽  
Pedro Fco. Miguel Sosa ◽  
José Luis Bonet Senach ◽  
Miguel Ángel Fernández Prada

Materials ◽  
2019 ◽  
Vol 12 (19) ◽  
pp. 3085 ◽  
Author(s):  
Paolo Foraboschi

This paper investigates the ultimate flexural strength of reinforced concrete beams when affected by premature failure due to a rotational capacity of the first plastic hinge being consumed before the last plastic hinges reach their maximum possible moment. The paper provides a simple formula for predicting the ultimate load of a hyperstatically supported beam, taking into account the available ductility. The proposed formula is the result of calibration against the ultimate loads from a non-linear analysis on a variety of beams, with a wide spectrum of configurations and with concrete grades from 10.0 to 60.0 N/mm2. The formula in based on the plastic hinge model, making it easy to apply, and the ultimate bending moments allow for the actual rotational capacity, making predictions accurate.


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