Constitutive Models for Nonlinear Analysis of SFRC Corbels
Journal of Building Engineering • 2020
Publication Information
Authors
26- F.B.A. Beshara, T.S. Mustafa, Ahmed A. Mahmoud, M.M.A. Khalil
Keywords
Corbels;
Steel fiber reinforced concrete
Nonlinear finite element
Shear capacity;
Load-deflection curves
;Load-steel strain curves;
Journal
Journal of Building Engineering
Publisher
ELSEVER
Volume
28
Issue
Not Available
Pages
Not Available
publication.type
International
Paper Link
Not Available
Supplementary Materials
Not Available
Abstract
In this paper, nonlinear constitutive models are proposed for steel fiber reinforced concrete (SFRC) in
compression and tension. The models were implemented in the finite element computer program ANSYS for 3-D
nonlinear analysis of SFRC corbels under monotonic static loading. Several validation studies have been performed for normal-strength and high-strength SFRC corbels with constant or variable depth. Good agreement is
generally achieved between experimental and numerical results for the load-deflection curves and crack patterns.
Additionally, parametric studies have been performed in order to investigate the effect of structural parameters
on the performance of SFRC corbels. It was found that: (1) increasing the concrete compressive strength (fc’)
improves corbel shear capacity and toughness, (2) the inclusion of steel fiber (Vf) delays premature shear failure
for corbels and enhances strain ductility, (3) an enhancement in shear capacity and strain ductility is noticed by
increasing the ratio of horizontal stirrups (ρh), and finally, (4) increasing the shear span-to-depth ratio (a/d)
reduces the shear capacity of SFRC corbels. Corbel shear capacity increases by 27% due to a 33% increase in (fc’),
by 31% due to Vf ¼ 1% inclusion, by 20% due to a 1% increase in (ρh), and by 20% due to a 39% decrease in (a/
d) ratio. The proposed nonlinear finite element approach is efficient in determining the expected enhancement in
shear capacity and ductility of SFRC corbels, and consequently in optimizing design parameters for such
elements.
compression and tension. The models were implemented in the finite element computer program ANSYS for 3-D
nonlinear analysis of SFRC corbels under monotonic static loading. Several validation studies have been performed for normal-strength and high-strength SFRC corbels with constant or variable depth. Good agreement is
generally achieved between experimental and numerical results for the load-deflection curves and crack patterns.
Additionally, parametric studies have been performed in order to investigate the effect of structural parameters
on the performance of SFRC corbels. It was found that: (1) increasing the concrete compressive strength (fc’)
improves corbel shear capacity and toughness, (2) the inclusion of steel fiber (Vf) delays premature shear failure
for corbels and enhances strain ductility, (3) an enhancement in shear capacity and strain ductility is noticed by
increasing the ratio of horizontal stirrups (ρh), and finally, (4) increasing the shear span-to-depth ratio (a/d)
reduces the shear capacity of SFRC corbels. Corbel shear capacity increases by 27% due to a 33% increase in (fc’),
by 31% due to Vf ¼ 1% inclusion, by 20% due to a 1% increase in (ρh), and by 20% due to a 39% decrease in (a/
d) ratio. The proposed nonlinear finite element approach is efficient in determining the expected enhancement in
shear capacity and ductility of SFRC corbels, and consequently in optimizing design parameters for such
elements.
Staff Members - Benha University