TY - JOUR
T1 - Competición a ciegas de simulaciones numéricas del fallo a cortante de vigas de hormigón reforzado con fibras
AU - Barros, Joaquim
AU - Sanz, Beatriz
AU - Kabele, Petr
AU - Yu, Rena C.
AU - Meschke, Günther
AU - Planas, Jaime
AU - Cunha, Vitor
AU - Caggiano, Antonio
AU - Ozyurt, Nilüfer
AU - Gouveia, Ventura
AU - van den Bos, Ab
AU - Poveda, Elisa
AU - Gal, Erez
AU - Cervenka, Jan
AU - Neu, Gerrit E.
AU - Rossi, Pierre
AU - Dias-Da-costa, Daniel
AU - Juhasz, Peter K.
AU - Cendon, David
AU - Ruiz, Gonzalo
AU - Valente, Tiago
N1 - Publisher Copyright:
© 2022 Asociación Española de Ingeniería Estructural (ACHE). Published by Cinter Divulgación Técnica S.L.
PY - 2022/3/10
Y1 - 2022/3/10
N2 - Experimental research has shown the extraordinary potential of the addition of short fibers to cement-based materials by improving significantly the behavior of concrete structures for serviceability and ultimate limit states. Software based on the finite element method has been used for the simulation of the material nonlinear behavior of fiber-reinforced concrete (FRC) structures. The applicability of the existing approaches has often been assessed by simulating experimental tests with structural elements, in general of a small scale, where the parameter values of the material constitutive laws are adjusted for the aimed predicting level, which constitutes an inverse technique of arguable utility for structural design practice. For assessing the predictive performance of these approaches, a blind simulation competition was organized. Two twin T-cross section steel FRC beams, flexurally reinforced with steel bars and without conventional shear reinforcement in the critical shear span, were experimentally tested up to failure. Despite the experimental data provided for the definition of the relevant model parameters, inaccuracies on the load capacity, deflection, and strain at peak load attained 40, 113, and 600%, respectively. Inadequate failure modes and highly different results were estimated with the same commercial software, indicating the need for deeper analysis and understanding of the models and influence of their parameters on their predictive performance.
AB - Experimental research has shown the extraordinary potential of the addition of short fibers to cement-based materials by improving significantly the behavior of concrete structures for serviceability and ultimate limit states. Software based on the finite element method has been used for the simulation of the material nonlinear behavior of fiber-reinforced concrete (FRC) structures. The applicability of the existing approaches has often been assessed by simulating experimental tests with structural elements, in general of a small scale, where the parameter values of the material constitutive laws are adjusted for the aimed predicting level, which constitutes an inverse technique of arguable utility for structural design practice. For assessing the predictive performance of these approaches, a blind simulation competition was organized. Two twin T-cross section steel FRC beams, flexurally reinforced with steel bars and without conventional shear reinforcement in the critical shear span, were experimentally tested up to failure. Despite the experimental data provided for the definition of the relevant model parameters, inaccuracies on the load capacity, deflection, and strain at peak load attained 40, 113, and 600%, respectively. Inadequate failure modes and highly different results were estimated with the same commercial software, indicating the need for deeper analysis and understanding of the models and influence of their parameters on their predictive performance.
KW - Benchmark
KW - fiber-reinforced concrete
KW - material nonlinear finite element analysis
KW - reinforced concrete beams
KW - shear failure
UR - http://www.scopus.com/inward/record.url?scp=85140963962&partnerID=8YFLogxK
U2 - 10.33586/hya.2022.3074
DO - 10.33586/hya.2022.3074
M3 - מאמר
AN - SCOPUS:85140963962
SN - 0439-5689
VL - 73
SP - 17
EP - 39
JO - Hormigon y Acero
JF - Hormigon y Acero
IS - 296
ER -