Mechanical Properties of Fiber-Reinforced Concrete Using Composite Binders
This paper investigates the creation of high-density impermeable concrete. The effect of the “cement, fly ash, and limestone” composite binders obtained by joint grinding with superplasticizer in the varioplanetary mill on the process of structure formation was studied. Compaction of structure on mi...
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Series: | Advances in Materials Science and Engineering |
Online Access: | http://dx.doi.org/10.1155/2017/2316347 |
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doaj-ae4c82ddc1eb44cba13baba3d60b92132020-11-24T22:53:34ZengHindawi LimitedAdvances in Materials Science and Engineering1687-84341687-84422017-01-01201710.1155/2017/23163472316347Mechanical Properties of Fiber-Reinforced Concrete Using Composite BindersRoman Fediuk0Aleksey Smoliakov1Aleksandr Muraviov2Far Eastern Federal University, Vladivostok 690950, RussiaFar Eastern Federal University, Vladivostok 690950, RussiaFar Eastern Federal University, Vladivostok 690950, RussiaThis paper investigates the creation of high-density impermeable concrete. The effect of the “cement, fly ash, and limestone” composite binders obtained by joint grinding with superplasticizer in the varioplanetary mill on the process of structure formation was studied. Compaction of structure on micro- and nanoscale levels was characterized by different techniques: X-ray diffraction, DTA-TGA, and electron microscopy. Results showed that the grinding of active mineral supplements allows crystallization centers to be created by ash particles as a result of the binding of Ca(OH)2 during hardening alite, which intensifies the clinker minerals hydration process; the presence of fine grains limestone also leads to the hydrocarboaluminates calcium formation. The relation between cement stone neoplasms composition as well as fibrous concrete porosity and permeability of composite at nanoscale level for use of composite binders with polydispersed mineral supplements was revealed. The results are of potential importance in developing the wide range of fine-grained fiber-reinforced concrete with a compressive strength more than 100 MPa, with low permeability under actual operating conditions.http://dx.doi.org/10.1155/2017/2316347 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Roman Fediuk Aleksey Smoliakov Aleksandr Muraviov |
spellingShingle |
Roman Fediuk Aleksey Smoliakov Aleksandr Muraviov Mechanical Properties of Fiber-Reinforced Concrete Using Composite Binders Advances in Materials Science and Engineering |
author_facet |
Roman Fediuk Aleksey Smoliakov Aleksandr Muraviov |
author_sort |
Roman Fediuk |
title |
Mechanical Properties of Fiber-Reinforced Concrete Using Composite Binders |
title_short |
Mechanical Properties of Fiber-Reinforced Concrete Using Composite Binders |
title_full |
Mechanical Properties of Fiber-Reinforced Concrete Using Composite Binders |
title_fullStr |
Mechanical Properties of Fiber-Reinforced Concrete Using Composite Binders |
title_full_unstemmed |
Mechanical Properties of Fiber-Reinforced Concrete Using Composite Binders |
title_sort |
mechanical properties of fiber-reinforced concrete using composite binders |
publisher |
Hindawi Limited |
series |
Advances in Materials Science and Engineering |
issn |
1687-8434 1687-8442 |
publishDate |
2017-01-01 |
description |
This paper investigates the creation of high-density impermeable concrete. The effect of the “cement, fly ash, and limestone” composite binders obtained by joint grinding with superplasticizer in the varioplanetary mill on the process of structure formation was studied. Compaction of structure on micro- and nanoscale levels was characterized by different techniques: X-ray diffraction, DTA-TGA, and electron microscopy. Results showed that the grinding of active mineral supplements allows crystallization centers to be created by ash particles as a result of the binding of Ca(OH)2 during hardening alite, which intensifies the clinker minerals hydration process; the presence of fine grains limestone also leads to the hydrocarboaluminates calcium formation. The relation between cement stone neoplasms composition as well as fibrous concrete porosity and permeability of composite at nanoscale level for use of composite binders with polydispersed mineral supplements was revealed. The results are of potential importance in developing the wide range of fine-grained fiber-reinforced concrete with a compressive strength more than 100 MPa, with low permeability under actual operating conditions. |
url |
http://dx.doi.org/10.1155/2017/2316347 |
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AT romanfediuk mechanicalpropertiesoffiberreinforcedconcreteusingcompositebinders AT alekseysmoliakov mechanicalpropertiesoffiberreinforcedconcreteusingcompositebinders AT aleksandrmuraviov mechanicalpropertiesoffiberreinforcedconcreteusingcompositebinders |
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