Time-dependent change of bending performance of aramid short-fiber reinforced concrete exposed in water or air with different temperature

Author(s):  
A. Hokura ◽  
S. Miyazato ◽  
S. Okamura ◽  
D. Yoshimoto ◽  
H. Kurakata
Author(s):  
Pham Thai Hoan ◽  
Ngo Tri Thuong

This study investigated the synergy in shear response of ultra-high-performance fiber-reinforced concrete (UHPFRCs) containing different contents of long and short smooth steel fiber reinforcements at high strain rates. Shear resistance of two ultra-high-performance mono-fiber-reinforced concrete (UHP-MFRCs): L15S00 (containing 1.5 vol.-% long and 0.0 vol.-% short fiber) or L00S15, and one ultra-high-performance hybrid-fiber-reinforced concrete (UHP-HFRCs): L10S05 (containing 1.0 vol.-% long and 0.5 vol.-% short fiber) at high strain rates of up to 272 s-1 was investigated using a new shear test setup by an improved strain energy frame impact machine (I-SEFIM). The L10S05 generated high synergy in shear strength, shear peak toughness at static rate and high synergy in shear strain, shear peak toughness at high strain rates. Moreover, all the investigated UHPFRCs were sensitive to the applied strain rates, especially in term of shear strength. Keywords: UHPFRCs; shear resistance; synergy effect; strain-rate dependent; impact. Received 23 August 2018, Revised 29 September 2018, Accepted 18 December 2018


Nanomaterials ◽  
2020 ◽  
Vol 10 (9) ◽  
pp. 1792
Author(s):  
Umberto De Maio ◽  
Nicholas Fantuzzi ◽  
Fabrizio Greco ◽  
Lorenzo Leonetti ◽  
Andrea Pranno

Recent progresses in nanotechnology have clearly shown that the incorporation of nanomaterials within concrete elements leads to a sensible increase in strength and toughness, especially if used in combination with randomly distributed short fiber reinforcements, as for ultra high-performance fiber-reinforced concrete (UHPFRC). Current damage models often are not able to accurately predict the development of diffuse micro/macro-crack patterns which are typical for such concrete structures. In this work, a diffuse cohesive interface approach is proposed to predict the structural response of UHPFRC structures enhanced with embedded nanomaterials. According to this approach, all the internal mesh boundaries are regarded as potential crack segments, modeled as cohesive interfaces equipped with a mixed-mode traction-separation law suitably calibrated to account for the toughening effect of nano-reinforcements. The proposed fracture model has been firstly validated by comparing the failure simulation results of UHPFRC specimens containing different fractions of graphite nanoplatelets with the available experimental data. Subsequently, such a model, combined with an embedded truss model to simulate the concrete/steel rebars interaction, has been used for predicting the load-carrying capacity of steel bar-reinforced UHPFRC elements enhanced with nanoplatelets. The numerical outcomes have shown the reliability of the proposed model, also highlighting the role of the nano-reinforcement in the crack width control.


2011 ◽  
Vol 82 ◽  
pp. 241-246 ◽  
Author(s):  
Masuhiro Beppu ◽  
Charles Abadie ◽  
Jun Takahashi ◽  
Atsuhisa Ogawa

This study presents the effects of short fiber reinforcement on the local damage of concrete plates subjected to high velocity impact. In a series of tests, three short fiber composite materials were used. Firstly, static bending tests were conducted to reveal mechanical properties in tension of the short fiber reinforced concrete. Then, high velocity impact tests were carried out to examine the effects of short fiber reinforcement on the local damage of concrete plates. Failure mode and strain behavior on the back surface of the short fiber reinforced concrete plates demonstrated that short fiber reinforcement was very effective in reducing the local damage.


2006 ◽  
Vol 62 (2) ◽  
pp. 341-355 ◽  
Author(s):  
Hajime ITO ◽  
Mitsuyasu IWANAMI ◽  
Hiroshi YOKOTA ◽  
Taku KISHIZOE ◽  
Yasuaki ISHIKAWA ◽  
...  

2012 ◽  
Vol 594-597 ◽  
pp. 959-962
Author(s):  
Yan Ru Li ◽  
Hai Bo Jiang ◽  
Ze Bao Kan

In order to determine the fiber direction distribution statistical characteristic of short fiber reinforced concrete, this paper put forward the equal projection model. According to the isotropic assumption of large volume of short-fiber reinforced concrete, in the three-dimensional coordinate system, when the concrete loads along all coordinate axes are equal, it is believed that a representative short fiber projection components in all axes are equal. According to the deduction, the cosine of the angle of the representative fiber and the force direction is equal to the reciprocal value of the square root of 3. On this basis, as an application example, the formula for the prediction of fiber reinforced concrete elastic modulus was deduced. The formula shows that the elastic modulus of short fiber reinforced concrete is equal to the sum of 1/3 of the elastic modulus of long fiber concrete in fiber length direction and 2/3 of the elastic modulus of long fiber concrete in the vertical direction.


2021 ◽  
Author(s):  
Murray J. Watts ◽  
Ali Amin ◽  
Raymond I. Gilbert ◽  
Walter Kaufmann ◽  
Fausto Minelli

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