The effect of temperature on the mechanical properties of hybrid FRP bars applicable for the reinforcing of concrete structures
One of the most common causes of the deterioration of concrete structures is the corrosion of steel reinforcement. Reinforcement made from fiber reinforced polymers (FRP) is considered to be an attractive substitution for traditional reinforcement. The most popular FRP reinforcing bars are made of g...
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2020-01-01
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doaj-7418a5f0a78c4531bdac60d12f642aab2021-08-05T13:51:36ZengEDP SciencesMATEC Web of Conferences2261-236X2020-01-013220102910.1051/matecconf/202032201029matecconf_matbud2020_01029The effect of temperature on the mechanical properties of hybrid FRP bars applicable for the reinforcing of concrete structuresOgrodowska Karolina0Łuszcz KarolinaGarbacz Andrzej1Warsaw University of Technology, Faculty of Civil EngineeringWarsaw University of Technology, Faculty of Civil EngineeringOne of the most common causes of the deterioration of concrete structures is the corrosion of steel reinforcement. Reinforcement made from fiber reinforced polymers (FRP) is considered to be an attractive substitution for traditional reinforcement. The most popular FRP reinforcing bars are made of glass fibers. Basalt fiber reinforced polymer (BFRP) is a relatively new material for reinforcing bars. The main drawback of BFRP bars is their low modulus of elasticity. A new type of bar made from hybrid fiber reinforced polymer (HFRP) in which a proportion of the basalt fibers are replaced with carbon fibers can be considered as a solution to this issue; such a bar is presented in this work. The HFRP bars might be treated as a relatively simple modification to previously produced BFRP bars. A different technical characteristic of the fibre reinforced polymer makes the designing of structures with FRP reinforcement differ from conventional reinforced concrete design. Therefore, it is necessary to identify the differences and limitations of their use in concrete structures, taking into account their material and geometric features. Despite the predominance of FRP composites in such aspects as corrosion resistance, high tensile strength, and significant weight reductions of structures – it is necessary to consider the behavior of FRP composites at elevated temperatures. In this paper, the effect of temperature on the mechanical properties of FRP bars was investigated. Three types of FRP bar were tested: BFRP, HFRP in which 25% of basalt fibers were replaced with carbon fibers and nHFRP in which epoxy resin was additionally modified with a nanosilica admixture. The mechanical properties were determined using ASTM standard testing for transverse shear strength. The tests were performed at -20°C, +20°C, +80°C for three diameters of each types of bar.https://www.matec-conferences.org/articles/matecconf/pdf/2020/18/matecconf_matbud2020_01029.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Ogrodowska Karolina Łuszcz Karolina Garbacz Andrzej |
spellingShingle |
Ogrodowska Karolina Łuszcz Karolina Garbacz Andrzej The effect of temperature on the mechanical properties of hybrid FRP bars applicable for the reinforcing of concrete structures MATEC Web of Conferences |
author_facet |
Ogrodowska Karolina Łuszcz Karolina Garbacz Andrzej |
author_sort |
Ogrodowska Karolina |
title |
The effect of temperature on the mechanical properties of hybrid FRP bars applicable for the reinforcing of concrete structures |
title_short |
The effect of temperature on the mechanical properties of hybrid FRP bars applicable for the reinforcing of concrete structures |
title_full |
The effect of temperature on the mechanical properties of hybrid FRP bars applicable for the reinforcing of concrete structures |
title_fullStr |
The effect of temperature on the mechanical properties of hybrid FRP bars applicable for the reinforcing of concrete structures |
title_full_unstemmed |
The effect of temperature on the mechanical properties of hybrid FRP bars applicable for the reinforcing of concrete structures |
title_sort |
effect of temperature on the mechanical properties of hybrid frp bars applicable for the reinforcing of concrete structures |
publisher |
EDP Sciences |
series |
MATEC Web of Conferences |
issn |
2261-236X |
publishDate |
2020-01-01 |
description |
One of the most common causes of the deterioration of concrete structures is the corrosion of steel reinforcement. Reinforcement made from fiber reinforced polymers (FRP) is considered to be an attractive substitution for traditional reinforcement. The most popular FRP reinforcing bars are made of glass fibers. Basalt fiber reinforced polymer (BFRP) is a relatively new material for reinforcing bars. The main drawback of BFRP bars is their low modulus of elasticity. A new type of bar made from hybrid fiber reinforced polymer (HFRP) in which a proportion of the basalt fibers are replaced with carbon fibers can be considered as a solution to this issue; such a bar is presented in this work. The HFRP bars might be treated as a relatively simple modification to previously produced BFRP bars. A different technical characteristic of the fibre reinforced polymer makes the designing of structures with FRP reinforcement differ from conventional reinforced concrete design. Therefore, it is necessary to identify the differences and limitations of their use in concrete structures, taking into account their material and geometric features. Despite the predominance of FRP composites in such aspects as corrosion resistance, high tensile strength, and significant weight reductions of structures – it is necessary to consider the behavior of FRP composites at elevated temperatures. In this paper, the effect of temperature on the mechanical properties of FRP bars was investigated. Three types of FRP bar were tested: BFRP, HFRP in which 25% of basalt fibers were replaced with carbon fibers and nHFRP in which epoxy resin was additionally modified with a nanosilica admixture. The mechanical properties were determined using ASTM standard testing for transverse shear strength. The tests were performed at -20°C, +20°C, +80°C for three diameters of each types of bar. |
url |
https://www.matec-conferences.org/articles/matecconf/pdf/2020/18/matecconf_matbud2020_01029.pdf |
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