Reactive Powder Concrete Containing Basalt Fibers: Strength, Abrasion and Porosity

. 2020 Jul 01 ; 13 (13) : . [epub] 20200701

Status PubMed-not-MEDLINE Jazyk angličtina Země Švýcarsko Médium electronic

Typ dokumentu časopisecké články

Perzistentní odkaz   https://www.medvik.cz/link/pmid32630228

Grantová podpora
20-00653S Grantová Agentura České Republiky
PPN/BCz/2019/1/00029/U/00001 Narodowa Agencja Wymiany Akademickiej
8J20PL031 Ministry of Education, Youth and Sports of the Czech Republic

The paper presents the test results of basalt fiber impact on a compressive and flexural strength, resistance to abrasion and porosity of Reactive Powder Concrete (RPC). The reasons for testing were interesting mechanical properties of basalt fibers, the significant tensile strength and flexural strength, and in particular the resistance to high temperatures, as well as a relatively small number of RPC tests performed with those fibers and different opinions regarding the impact of those fibers on concrete strength. The composition of the concrete mix was optimized to obtain the highest packing density of particles in the composite, based on the optimum particle size distribution curve acc. to Funk. Admixture of basalt fibers was used in quantity 2, 3, 6, 8 and 10 kg/m3, length 12 mm and diameter 18 µm. A low water-to-binder ratio, i.e., from 0.24, was obtained through application of a polycarboxylate-based superplasticizer. The introduction of up to 10 kg/m3 of basalt fibers to RPC mix was proved to be possible, while keeping the same w/c ratio equal to 0.24, with a slight loss of workability of the concrete mix as the content of fibers increased. It was found that the increase of the fiber content in RPC to 10 kg/m3, despite the w/c ratio was kept the same, caused reduction of the concrete compressive strength by 18.2%, 7.8% and 13.6%, after 2, 7, and 28 days respectively. Whereas, the flexural strength of RPC increased gradually (maximum by 15.9%), along with the fiber quantity increase up to 6 kg/m3, and then it reduced (maximum by 17.7%), as the fiber content in the concrete was further increased. The reduction of RPC compressive strength, along with the increase in basalt fibers content, leads to the increase of the total porosity, as well as the change in pore volume distribution. The reduction of RPC abrasion resistance was demonstrated along with the increase of basalt fibers content, which was explained by the compressive strength reduction of that concrete. A linear relation between the RPC abrasion resistance and the compressive strength involves a high determination coefficient equal to 0.97.

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Richard P., Cheyrezy M. Composition of reactive powder concretes. Cem. Concr. Res. 1995;25:1501–1511. doi: 10.1016/0008-8846(95)00144-2. DOI

Aitcin P.-C. Cements of yesterday and today, concrete of tomorrow. Cem. Concr. Res. 2000;30:1349–1359. doi: 10.1016/S0008-8846(00)00365-3. DOI

Blais P.Y., Couture M. Prestressed Pedestrian Bridge–World’s First Reactive Powder Concrete Structure. PCI J. 1999;44:60–71. doi: 10.15554/pcij.09011999.60.71. DOI

Matte V., Moranville M. Durability of reactive powder composites: Influence of silica fume on the leaching properties of very low water/binder pastes. Cem. Concr.Comp. 1999;21:1–9. doi: 10.1016/S0958-9465(98)00025-0. DOI

Staquet S., Espion E. Influence of cement and silica fume type on compressive strength of reactive powder concrete; Proceedings of the 6th Int. Symp. UHS/HPC; Leipzig, Germany. 22–24 June 2002; pp. 1421–1436.

Glinicki M.A. Concrete with structural fibers; Proceedings of the XXV Workshops—The Work of Construction Designer; Szczyrk, Poland. 10–13 March 2010; pp. 279–308. (In Polish)

Scheinherrová L., Vejmelková E., Keppert M., Bezdička P., Doleželová M., Krejsová J., Grzeszczyk S., Matuszek-Chmurowska A., Černý R. Effect of Cu-Zn coated steel fibers on high temperature resistance of reactive powder concrete. Cem. Concr. Res. 2019;117:45–57.

Chonghai D., Xinwei M. Experimental research on mechanical properties of basalt fiber reinforced reactive powder concrete. Adv. Mat. Res. 2014;893:610–613.

Hager I., Zdeb T., Krzemień K. The impact of the amount of polypropylene fibers on spalling behaviour and residua mechanical properties of reactive powder concrete. MATEC Conf. 2013;6:1–8.

Fiore V., Scalici T., Di Bella G., Valenza A. A review on basalt fiber and its composites. Comp. B. 2015;74:74–94.

Singua K. A short review on basalt fiber. Int. J. Tex. Sci. 2012;1:18–19.

Karwowska J., Łapko A. The usefulness of modern fiber-reinforced concrete in building structures. Civ. Envir. Eng. 2011;2:41–46.

Barabanshchkov Y., Gutskalov I. Strength and deformability of fiber reinforced cement paste on the basis of basalt fiber. Adv. Civ. Eng. 2016:1–5. doi: 10.1155/2016/6562526. DOI

Ayub T., Shafiq N., Nuruddin M.F. Mechanical properties of high-performance concrete reinforced with basalt fibers. Pro. Eng. 2014;77:131–139. doi: 10.1016/j.proeng.2014.07.029. DOI

Kabay N. Abrasion resistance and fracture energy of concretes with basalt fiber. Con. Build. Mat. 2014;50:95–101. doi: 10.1016/j.conbuildmat.2013.09.040. DOI

Jiang C., Fan K., Wu F., Chen D. Experimental study on the mechanical properties and microstructure of chopped basalt fiber reinforced concrete. Mat. Des. 2014;58:187–193. doi: 10.1016/j.matdes.2014.01.056. DOI

Ahmed T., Alam A., Chufal M.S. Experimental study on mechanical properties of basalt fiber reinforced concrete. Int. J. Sci. Res. 2013;4:468–472.

Li J.J., Zhao Z.M. Study on mechanical properties of basalt fiber reinforced concrete; Proceedings of the 5th Int. Conf. EMCPE; Zhengzhou, China. 11–12 April 2016; pp. 583–587.

Morozov N.M., Borovskich I.V., Khozin V.G. Sand basalt-fiber concrete. World Appl. Sci. J. 2013;25:832–838.

Atiş C.D. Abrasion-porosity-strength model for fly ash concrete. J. Mater. Civ. Eng. 2013;15:408–410. doi: 10.1061/(ASCE)0899-1561(2003)15:4(408). DOI

Funk J., Dinger D. Predictive Process Control of Crowded Particulate Suspensions—Applied to Ceramic Manufacturing. Kluver Academic Publishers; Dordrecht, The Netherlands: 1994.

Larrard F., Sedran T. Optimalization of ultra-high-performance concrete by use of a packing model. Cem. Concr. Res. 1994;24:997–1009. doi: 10.1016/0008-8846(94)90022-1. DOI

Zdeb T. Ultra-high performance concrete–properties and technology. Bull. Pol. Ac.: Tech. 2013;61:183–193. doi: 10.2478/bpasts-2013-0017. DOI

PN-EN 1015-3 . Methods of Test for Mortar for Masonry—Part 3: Determination of Consistence of Fresh Mortar (by Flow Table) BSI Group Polska Sp. z o.o.; Warsaw, Poland: 2000.

PN-EN 1015-11 . Methods of Test for Mortar for Masonry—Part 11: Determination of Flexural and Compressive Strength of Hardened Mortar. BSI Group Polska Sp. z o.o.; Warsaw, Poland: 2001.

PN-EN 1338 . Concrete Paving Blocks. Requirements and Test Methods. BSI Group Polska Sp. z o.o.; Warsaw, Poland: 2005.

Głodkowska W. Waste Sand Fiber Composite—Models of Description of Properties Application. Annu. Set Environ. Prot. 2018;20:3. (In Polish)

Odler I., Rößler M. Investigations on the relationship between porosity, structure and strength of hydrated Portland cement pastes. II. Effect of pore structure and of degree of hydration. Cem. Concr. Res. 1985;15:401–410. doi: 10.1016/0008-8846(85)90113-9. DOI

Kumar R., Bhattachrjee B. Porosity, pore size distribution and in situ strength of concrete. Cem. Concr. Res. 2003;33:155–164. doi: 10.1016/S0008-8846(02)00942-0. DOI

Grzeszczyk S., Matuszek-Chmurowska A., Černý R., Vejmelková E. Microstructure of reactive powder concrete. Cem. Lime Concr. 2018;1:1–15.

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