TY - GEN
T1 - Structural system influence on the shear capacity of wide members without shear reinforcement
AU - de Sousa, Alex
AU - Lantsoght, Eva
AU - El Debs, Mounir
N1 - Publisher Copyright:
© Proceedings of the fib Symposium 2020: Concrete Structures for Resilient Society. All rights reserved.
PY - 2020
Y1 - 2020
N2 - Most shear strength models used to estimate the shear capacity of wide reinforced concrete members without shear reinforcement do not consider the structural system or the support conditions. However, some experimental results indicate that members with predominant flexural action, such as cantilever beams, may benefit from higher bending moments at the support. These results suggest that the structural system or the support conditions can influence the shear strength. In this paper, we investigate the structural system influence on the shear strength of wide members. For this purpose, we review the available test results that varied the structural system, and we compared the accuracy and precision level of shear strength models from the literature according to the structural system of the members. In the analyses, we observed that the ratio of tested to predicted shear capacity is 5 - 10 % smaller for cantilever members than for simply supported beams. On the other hand, the ratio of tested to predicted shear capacity is 10-20% larger in continuous members than in simply supported ones. Although these results may indicate some influence of the structural system in the shear behavior, in this study, we did not identify physical reasons to validate this hypothesis. In this way, this tendency of results could be addressed to some bias in the database. However, we verified that the correlation between the shear capacities of wide members could be better correlated with the shear slenderness by taking into account that the behavior of some continuous members under uniformly distributed loads is similar to the simply supported ones with a reduced span length.
AB - Most shear strength models used to estimate the shear capacity of wide reinforced concrete members without shear reinforcement do not consider the structural system or the support conditions. However, some experimental results indicate that members with predominant flexural action, such as cantilever beams, may benefit from higher bending moments at the support. These results suggest that the structural system or the support conditions can influence the shear strength. In this paper, we investigate the structural system influence on the shear strength of wide members. For this purpose, we review the available test results that varied the structural system, and we compared the accuracy and precision level of shear strength models from the literature according to the structural system of the members. In the analyses, we observed that the ratio of tested to predicted shear capacity is 5 - 10 % smaller for cantilever members than for simply supported beams. On the other hand, the ratio of tested to predicted shear capacity is 10-20% larger in continuous members than in simply supported ones. Although these results may indicate some influence of the structural system in the shear behavior, in this study, we did not identify physical reasons to validate this hypothesis. In this way, this tendency of results could be addressed to some bias in the database. However, we verified that the correlation between the shear capacities of wide members could be better correlated with the shear slenderness by taking into account that the behavior of some continuous members under uniformly distributed loads is similar to the simply supported ones with a reduced span length.
KW - Mechanical models
KW - Shear strength
KW - Shear-transfer mechanisms
KW - Structural system
KW - Wide members
UR - http://www.scopus.com/inward/record.url?scp=85102395999&partnerID=8YFLogxK
M3 - Contribución a la conferencia
AN - SCOPUS:85102395999
T3 - Proceedings of the fib Symposium 2020: Concrete Structures for Resilient Society
SP - 599
EP - 606
BT - Proceedings of the fib Symposium 2020
A2 - Zhao, Bin
A2 - Lu, Xilin
PB - International Federation for Structural Concrete
T2 - 2020 fib Symposium: Concrete Structures for Resilient Society
Y2 - 22 November 2020 through 24 November 2020
ER -