Mechanical Properties of Carbon-Fabric-Reinforced High-Strength Matrices
Fabric-reinforced cementitious matrices (FRCM) are promising technologies that respond to today’s architectural approaches. However, due to their high strength and ductility, they are starting to be implemented in buildings as strengthening systems. In this experimental study, the amount of fiber al...
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doaj-63e1183d845b40199ff52e10a52011e12020-11-25T03:51:46ZengMDPI AGMaterials1996-19442020-08-01133508350810.3390/ma13163508Mechanical Properties of Carbon-Fabric-Reinforced High-Strength MatricesBekir Yılmaz Pekmezci0Ali Çopuroğlu1Istanbul Technical University, Faculty of Civil Engineering, Maslak, Istanbul 34469, TurkeyIstanbul Technical University, Faculty of Civil Engineering, Maslak, Istanbul 34469, TurkeyFabric-reinforced cementitious matrices (FRCM) are promising technologies that respond to today’s architectural approaches. However, due to their high strength and ductility, they are starting to be implemented in buildings as strengthening systems. In this experimental study, the amount of fiber along the load direction in high-strength cementitious matrices and the effects of the fiber orientation on FRCM mechanical properties were studied. A total of four different composites were produced with two fabrics and two matrices. Tensile and flexural tests were carried out on composites. Within the scope of microstructure studies, scanning electron microscope micrographs were obtained and analyzed, along with microtopography sections. The main result obtained from the study indicates that as the fiber area in the direction of the load increases, the load order carried in this direction increases. However, this increase does not have to be proportional to the fiber area used in the direction of the load. The fiber coating and coating matrix interface play important roles in a composite’s performance. The carbon fibers can be used more efficiently by using them along the load direction and the loads in the matrix can be transferred to the carbon fibers by creating a larger fiber–matrix interface area.https://www.mdpi.com/1996-1944/13/16/3508flexural strengthtensile strengthhigh-strength concretecementitious compositesFRCMTRC |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Bekir Yılmaz Pekmezci Ali Çopuroğlu |
spellingShingle |
Bekir Yılmaz Pekmezci Ali Çopuroğlu Mechanical Properties of Carbon-Fabric-Reinforced High-Strength Matrices Materials flexural strength tensile strength high-strength concrete cementitious composites FRCM TRC |
author_facet |
Bekir Yılmaz Pekmezci Ali Çopuroğlu |
author_sort |
Bekir Yılmaz Pekmezci |
title |
Mechanical Properties of Carbon-Fabric-Reinforced High-Strength Matrices |
title_short |
Mechanical Properties of Carbon-Fabric-Reinforced High-Strength Matrices |
title_full |
Mechanical Properties of Carbon-Fabric-Reinforced High-Strength Matrices |
title_fullStr |
Mechanical Properties of Carbon-Fabric-Reinforced High-Strength Matrices |
title_full_unstemmed |
Mechanical Properties of Carbon-Fabric-Reinforced High-Strength Matrices |
title_sort |
mechanical properties of carbon-fabric-reinforced high-strength matrices |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2020-08-01 |
description |
Fabric-reinforced cementitious matrices (FRCM) are promising technologies that respond to today’s architectural approaches. However, due to their high strength and ductility, they are starting to be implemented in buildings as strengthening systems. In this experimental study, the amount of fiber along the load direction in high-strength cementitious matrices and the effects of the fiber orientation on FRCM mechanical properties were studied. A total of four different composites were produced with two fabrics and two matrices. Tensile and flexural tests were carried out on composites. Within the scope of microstructure studies, scanning electron microscope micrographs were obtained and analyzed, along with microtopography sections. The main result obtained from the study indicates that as the fiber area in the direction of the load increases, the load order carried in this direction increases. However, this increase does not have to be proportional to the fiber area used in the direction of the load. The fiber coating and coating matrix interface play important roles in a composite’s performance. The carbon fibers can be used more efficiently by using them along the load direction and the loads in the matrix can be transferred to the carbon fibers by creating a larger fiber–matrix interface area. |
topic |
flexural strength tensile strength high-strength concrete cementitious composites FRCM TRC |
url |
https://www.mdpi.com/1996-1944/13/16/3508 |
work_keys_str_mv |
AT bekiryılmazpekmezci mechanicalpropertiesofcarbonfabricreinforcedhighstrengthmatrices AT alicopuroglu mechanicalpropertiesofcarbonfabricreinforcedhighstrengthmatrices |
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