This paper investigated the effect of geometry and fraction of polypropylene (PP) fiber and the induced microcracks on permeability of ultra-high performance concrete (UHPC) subjected to elevated temperature. Residual permeability and microcrack networks of fifteen UHPC mixes were characterized and an analytical model correlating residual permeability of UHPC with fiber fraction and geometry was proposed. Results showed that increasing fiber length and dosage had much stronger effect than increasing fiber diameter on enhancing permeability due to greater enhancement on percolation of fiber tunnels. It was found that permeability of UHPC is positively correlated with both the aspect ratio and dosage of PP fibers. However, at low fiber aspect...
In the past two centuries, concrete has made a remarkable impact on human history. Nowadays, Ultra-h...
Experiments were performed on several types of high performance concrete, including high strength co...
Concrete tends to spall explosively under fire due to the combined effect of thermal stress and pore...
This paper investigated the effect of geometry and fraction of polypropylene (PP) fiber and the indu...
Polypropylene (PP) fibers are commonly used for the prevention of thermal spalling of ultra-high per...
Ultra-high performance concrete (UHPC), due to its dense microstructure, is highly susceptible to ex...
This study investigated synergetic effects of hybrid polypropylene (PP) and steel fibers on explosiv...
This paper investigates the individual and combined effects of polypropylene (PP) fibers, steel fibe...
In this work we assess the effect of the addition of polypropylene (PP) fibers in a heated ultra-hig...
Ultra-High Performance Concretes (UHPC) has high strength (greater than 150 MPa), high durability, a...
The phisyco-mechanical processes triggering concrete explosive spalling are related to the heat-indu...
The phisyco-mechanical processes triggering concrete explosive spalling are related to the heat-indu...
ABSTRACT: Explosive spalling has been observed as a common failure mechanism of high strength concre...
This study aimed to investigate fire resistance of strain hardening ultra-high performance concrete ...
International audienceIn this work, the influence of diameter of polypropylene (PP) fiber on the spa...
In the past two centuries, concrete has made a remarkable impact on human history. Nowadays, Ultra-h...
Experiments were performed on several types of high performance concrete, including high strength co...
Concrete tends to spall explosively under fire due to the combined effect of thermal stress and pore...
This paper investigated the effect of geometry and fraction of polypropylene (PP) fiber and the indu...
Polypropylene (PP) fibers are commonly used for the prevention of thermal spalling of ultra-high per...
Ultra-high performance concrete (UHPC), due to its dense microstructure, is highly susceptible to ex...
This study investigated synergetic effects of hybrid polypropylene (PP) and steel fibers on explosiv...
This paper investigates the individual and combined effects of polypropylene (PP) fibers, steel fibe...
In this work we assess the effect of the addition of polypropylene (PP) fibers in a heated ultra-hig...
Ultra-High Performance Concretes (UHPC) has high strength (greater than 150 MPa), high durability, a...
The phisyco-mechanical processes triggering concrete explosive spalling are related to the heat-indu...
The phisyco-mechanical processes triggering concrete explosive spalling are related to the heat-indu...
ABSTRACT: Explosive spalling has been observed as a common failure mechanism of high strength concre...
This study aimed to investigate fire resistance of strain hardening ultra-high performance concrete ...
International audienceIn this work, the influence of diameter of polypropylene (PP) fiber on the spa...
In the past two centuries, concrete has made a remarkable impact on human history. Nowadays, Ultra-h...
Experiments were performed on several types of high performance concrete, including high strength co...
Concrete tends to spall explosively under fire due to the combined effect of thermal stress and pore...