Accès libre

The effect of varied types of steel fibers on the performance of self-compacting concrete modified with volcanic pumice powder

À propos de cet article

Citez

ACI, ACI Committee report 237R-07 Self-consolidating concrete. ASTM International, West Conshohocken, PA. 2007. ACI, ACI Committee report 237R-07 Self-consolidating concrete ASTM International West Conshohocken, PA 2007 Search in Google Scholar

Uysal M, Yilmaz K. Effect of mineral admixtures on properties of self-compacting concrete. Cem Concr Compos. 2011;33(7):771–6. UysalM YilmazK Effect of mineral admixtures on properties of self-compacting concrete Cem Concr Compos 2011 33 7 771 6 10.1016/j.cemconcomp.2011.04.005 Search in Google Scholar

Jalal M, Pouladkhan A, Harandi OF, Jafari D. Comparative study on effects of Class F fly ash, nano silica and silica fume on properties of high performance self compacting concrete. Constr Build Mater. 2015;94:90–104. JalalM PouladkhanA HarandiOF JafariD Comparative study on effects of Class F fly ash, nano silica and silica fume on properties of high performance self compacting concrete Constr Build Mater 2015 94 90 104 10.1016/j.conbuildmat.2015.07.001 Search in Google Scholar

Dadsetan S, Bai J. Mechanical and microstructural properties of self-compacting concrete blended with metakaolin, ground granulated blast-furnace slag and fly ash. Constr Build Mater. 2017;146:658–667. DadsetanS BaiJ Mechanical and microstructural properties of self-compacting concrete blended with metakaolin, ground granulated blast-furnace slag and fly ash Constr Build Mater 2017 146 658 667 10.1016/j.conbuildmat.2017.04.158 Search in Google Scholar

Siddique R. Properties of concrete made with volcanic ash. Resour Conserv Recycl. 2012;66:40–4. SiddiqueR Properties of concrete made with volcanic ash Resour Conserv Recycl 2012 66 40 4 10.1016/j.resconrec.2012.06.010 Search in Google Scholar

Al-Fadala S, Chakkamalayath J, Al-Bahar S, Al-Aibani A, Ahmed S. Significance of performance based specifications in the qualification and characterization of blended cement using volcanic ash. Constr Build Mater. 2017;144:532–40. Al-FadalaS ChakkamalayathJ Al-BaharS Al-AibaniA AhmedS Significance of performance based specifications in the qualification and characterization of blended cement using volcanic ash Constr Build Mater 2017 144 532 40 10.1016/j.conbuildmat.2017.03.180 Search in Google Scholar

Etli S, Cemalgil S, Onat O. Effect of pumice powder and artificial lightweight fine aggregate on self-compacting mortar. Comput Concr. 2021;27(3):241–52. EtliS CemalgilS OnatO Effect of pumice powder and artificial lightweight fine aggregate on self-compacting mortar Comput Concr 2021 27 3 241 52 Search in Google Scholar

Granata MF. Pumice powder as filler of self-compacting concrete. Constr Build Mater. 2015;96:581–90. GranataMF Pumice powder as filler of self-compacting concrete Constr Build Mater 2015 96 581 90 10.1016/j.conbuildmat.2015.08.040 Search in Google Scholar

Pekmezci B, Akyüz S. Optimum usage of a natural pozzolan for the maximum compressive strength of concrete. Cem Concr Res. 2004;34(12):2175–9. PekmezciB AkyüzS Optimum usage of a natural pozzolan for the maximum compressive strength of concrete Cem Concr Res 2004 34 12 2175 9 10.1016/j.cemconres.2004.02.008 Search in Google Scholar

Lemougna PN, Wang KT, Tang Q, Nzeukou AN, Billong N, Chinje Melo U, et al. Review on the use of volcanic ashes for engineering applications. Resour Conserv Recycl. 2018;137:177–90. LemougnaPN WangKT TangQ NzeukouAN BillongN Chinje MeloU Review on the use of volcanic ashes for engineering applications Resour Conserv Recycl 2018 137 177 90 10.1016/j.resconrec.2018.05.031 Search in Google Scholar

Celik K, Jackson MD, Mancio M, Meral C, Emwas AH, Mehta PK, et al., High-volume natural volcanic pozzolan and limestone powder as partial replacements for Portland cement in self-compacting and sustainable concrete. Cem Concr Compos. 2014;45:136–47. CelikK JacksonMD MancioM MeralC EmwasAH MehtaPK High-volume natural volcanic pozzolan and limestone powder as partial replacements for Portland cement in self-compacting and sustainable concrete Cem Concr Compos. 2014 45 136 47 10.1016/j.cemconcomp.2013.09.003 Search in Google Scholar

Tran Q, Ghosh P. Influence of pumice on mechanical properties and durability of high performance concrete. Constr Build Mater. 2020;249:118741. TranQ GhoshP Influence of pumice on mechanical properties and durability of high performance concrete Constr Build Mater. 2020 249 118741 10.1016/j.conbuildmat.2020.118741 Search in Google Scholar

Buratti N, Mazzotti C, Savoia M. Post-cracking behaviour of steel and macro-synthetic fibre-reinforced concretes. Constr Build Mater. 2011;25(5):2713–22. BurattiN MazzottiC SavoiaM Post-cracking behaviour of steel and macro-synthetic fibre-reinforced concretes Constr Build Mater 2011 25 5 2713 22 10.1016/j.conbuildmat.2010.12.022 Search in Google Scholar

Dhonde HB, Mo YL, Hsu TTC, Vogel J. Fresh and hardened properties of self-consolidating fiber-reinforced concrete. ACI Mater Journal. 2007;104(5):491. DhondeHB MoYL HsuTTC VogelJ Fresh and hardened properties of self-consolidating fiber-reinforced concrete ACI Mater Journal 2007 104 5 491 10.14359/18905 Search in Google Scholar

Najafiyan M, Bagheri Z, Ghasemi A, Rashnavadi A. Comparison study on concretes containing fibers to provide concrete with high resistance. World Appl Sci J. 2013;24(8):1106–10. NajafiyanM BagheriZ GhasemiA RashnavadiA Comparison study on concretes containing fibers to provide concrete with high resistance World Appl Sci J 2013 24 8 1106 10 Search in Google Scholar

Katzer J, Domski J. Quality and mechanical properties of engineered steel fibres used as reinforcement for concrete. Constr Build Mater. 2012;34:243–48. KatzerJ DomskiJ Quality and mechanical properties of engineered steel fibres used as reinforcement for concrete Constr Build Mater 2012 34 243 48 10.1016/j.conbuildmat.2012.02.058 Search in Google Scholar

Zemir I, Debieb F, Kenai S, Ouldkhaoua Y, Irki I. Strengthening of ordinary vibrated concrete using steel fibers self-compacting concrete. J Adhes Sci Technol. 2020;34(14):1556–1571. ZemirI DebiebF KenaiS OuldkhaouaY IrkiI Strengthening of ordinary vibrated concrete using steel fibers self-compacting concrete J Adhes Sci Technol 2020 34 14 1556 1571 10.1080/01694243.2020.1712769 Search in Google Scholar

Madandoust R, Mohammad Ranjbar M, Ghavidel R. Assessment of factors influencing mechanical properties of steel fiber reinforced self-compacting concrete. Mater Des. 2015;83:284–94. MadandoustR Mohammad RanjbarM GhavidelR Assessment of factors influencing mechanical properties of steel fiber reinforced self-compacting concrete Mater Des 2015 83 284 94 10.1016/j.matdes.2015.06.024 Search in Google Scholar

Soroushian P, Bayasi ZJMJ. Fiber type effects on the performance of steel fiber reinforced concrete. ACI Mater J. 1991;88(2):129–34. SoroushianP BayasiZJMJ Fiber type effects on the performance of steel fiber reinforced concrete ACI Mater J 1991 88 2 129 34 10.14359/1883 Search in Google Scholar

Ponikiewski T, TJMBM. The workability of steel fibre reinforced self-compacting concrete; Modern Buildind Materials, Structures Techniques. Vilnius Gediminas Technical University. 2010. pp. 264–269. PonikiewskiT TJMBM The workability of steel fibre reinforced self-compacting concrete; Modern Buildind Materials, Structures Techniques Vilnius Gediminas Technical University 2010 264 269 Search in Google Scholar

Martinie L, Roussel N. Simple tools for fiber orientation prediction in industrial practice. Cem Concr Res. 2011;41(10):993–1000. MartinieL RousselN Simple tools for fiber orientation prediction in industrial practice Cem Concr Res 2011 41 10 993 1000 10.1016/j.cemconres.2011.05.008 Search in Google Scholar

ASTM-C150. Standard test method for Portland cement. West Conshohocken, PA, US: American Society for Testing and Materials; 2007. ASTM-C150 Standard test method for Portland cement West Conshohocken, PA, US American Society for Testing and Materials 2007 Search in Google Scholar

Zeyad AM, Tayeh BA, Yusuf MO. Strength and transport characteristics of volcanic pumice powder based high strength concrete. Constr Build Mater. 2019;216:314–24. ZeyadAM TayehBA YusufMO Strength and transport characteristics of volcanic pumice powder based high strength concrete Constr Build Mater 2019 216 314 24 10.1016/j.conbuildmat.2019.05.026 Search in Google Scholar

BS. Chemical analysis of refractory products by X-ray fluorescence (XRF). Fused cast-bead method. In: BS EN ISO 12677:2011. London, UK: BSI; 2011. p. 86. BS Chemical analysis of refractory products by X-ray fluorescence (XRF). Fused cast-bead method In: BS EN ISO 12677:2011. London, UK BSI 2011 86 Search in Google Scholar

ASTM-C33. Standard specification for concrete aggregates. West Conshohocken, PA, US: American Society for Testing and Materials; 2016. ASTM-C33 Standard specification for concrete aggregates West Conshohocken, PA, US American Society for Testing and Materials 2016 Search in Google Scholar

Khaloo A, Raisi EM, Hosseini P, Tahsiri H. Mechanical performance of self-compacting concrete reinforced with steel fibers. Constr Build Mater. 2014;51:179–86. KhalooA RaisiEM HosseiniP TahsiriH Mechanical performance of self-compacting concrete reinforced with steel fibers Constr Build Mater 2014 51 179 86 10.1016/j.conbuildmat.2013.10.054 Search in Google Scholar

ACI-211. Standard practice for selecting proportions for normal, heavyweight and mass concrete. Farmington Hills, MI, USA: American Concrete Institute; 1991. ACI-211 Standard practice for selecting proportions for normal, heavyweight and mass concrete Farmington Hills, MI, USA American Concrete Institute 1991 Search in Google Scholar

ACI-308. Guide to curing concrete. 2001 reapproved. Farmington Hills, MI, USA: American Concrete Institute; 2008. ACI-308 Guide to curing concrete. 2001 reapproved Farmington Hills, MI, USA American Concrete Institute 2008 Search in Google Scholar

EFCAA. The European guidelines for self-compacting concrete, specification, production and use. Fernham, UK. Citeseer, 2005. https://efnarc.org/ EFCAA The European guidelines for self-compacting concrete, specification, production and use Fernham, UK Citeseer 2005 https://efnarc.org/ Search in Google Scholar

ASTM-C1610. Standard test method for static segregation of self-consolidating concrete using column technique. West Conshohocken, PA, US: American Society for Testing and Materials; 2017. ASTM-C1610 Standard test method for static segregation of self-consolidating concrete using column technique West Conshohocken, PA, US American Society for Testing and Materials 2017 Search in Google Scholar

ASTM-C232. Standard specification for bleeding of concrete. West Conshohocken, PA, US: American Society for Testing and Materials; 2014. ASTM-C232 Standard specification for bleeding of concrete West Conshohocken, PA, US American Society for Testing and Materials 2014 Search in Google Scholar

ASTM-C39. Standard test method for compressive strength of cylindrical concrete specimens. West Conshohocken, PA, US: American Society for Testing and Materials; 2015a. ASTM-C39 Standard test method for compressive strength of cylindrical concrete specimens West Conshohocken, PA, US American Society for Testing and Materials 2015a Search in Google Scholar

ASTM-C496. Standard test method for splitting tensile strength of cylindrical concrete specimens. West Conshohocken, PA, US: American Society for Testing and Materials; 2011. ASTM-C496 Standard test method for splitting tensile strength of cylindrical concrete specimens West Conshohocken, PA, US American Society for Testing and Materials 2011 Search in Google Scholar

ASTM-C78. Standard test method for flexural strength of concrete (using simple beam with third-point loading). West Conshohocken, PA, US: American Society for Testing and Materials; 2015a. ASTM-C78 Standard test method for flexural strength of concrete (using simple beam with third-point loading) West Conshohocken, PA, US American Society for Testing and Materials 2015a Search in Google Scholar

ASTM-C1018. Standard test method for flexural toughness and first-crack strength of fiber-reinforced concrete (using beam with third-point loading). West Conshohocken, PA, US: American Society for Testing and Materials; 1997. ASTM-C1018 Standard test method for flexural toughness and first-crack strength of fiber-reinforced concrete (using beam with third-point loading) West Conshohocken, PA, US American Society for Testing and Materials 1997 Search in Google Scholar

Abbass W, Khan MI, Mourad S. Evaluation of mechanical properties of steel fiber reinforced concrete with different strengths of concrete. Constr Build Mater. 2018;168:556–69. AbbassW KhanMI MouradS Evaluation of mechanical properties of steel fiber reinforced concrete with different strengths of concrete Constr Build Mater 2018 168 556 69 10.1016/j.conbuildmat.2018.02.164 Search in Google Scholar

Iqbal S, Holschemacher K, Ali A, Bier TA. Mechanical properties of steel fiber reinforced high strength lightweight self-compacting concrete (SHLSCC). Constr Build Mater. 2015;98:325–33. IqbalS HolschemacherK AliA BierTA Mechanical properties of steel fiber reinforced high strength lightweight self-compacting concrete (SHLSCC) Constr Build Mater 2015 98 325 33 10.1016/j.conbuildmat.2015.08.112 Search in Google Scholar

Zeyad AM. Effect of fibers types on fresh properties and flexural toughness of self-compacting concrete. J Mater Res Technol. 2020;9(3):4147–58. ZeyadAM Effect of fibers types on fresh properties and flexural toughness of self-compacting concrete J Mater Res Technol 2020 9 3 4147 58 10.1016/j.jmrt.2020.02.042 Search in Google Scholar

Zeyad AM, Abutaleb A. Influence of steel fiber volume and volcanic pumice powder on self-consolidating concrete properties. J King Abdulaziz Univ Eng Sci. 2020;31(1):16. ZeyadAM AbutalebA Influence of steel fiber volume and volcanic pumice powder on self-consolidating concrete properties J King Abdulaziz Univ Eng Sci. 2020 31 1 16 Search in Google Scholar

Alwesabi EA, Abu Bakar BH, Alshaikh MH, Md Akil H. Experimental investigation on mechanical properties of plain and rubberised concretes with steel–polypropylene hybrid fibre. Constr Build Mater. 2020;233:117194. AlwesabiEA Abu BakarBH AlshaikhMH Md AkilH Experimental investigation on mechanical properties of plain and rubberised concretes with steel–polypropylene hybrid fibre Constr Build Mater. 2020 233 117194 10.1016/j.conbuildmat.2019.117194 Search in Google Scholar

Zeyad AM, Almalki A. Role of particle size of natural pozzolanic materials of volcanic pumice: flow properties, strength, and permeability. Arab J Geosci. 2021;14(2):1–11. ZeyadAM AlmalkiA Role of particle size of natural pozzolanic materials of volcanic pumice: flow properties, strength, and permeability Arab J Geosci 2021 14 2 1 11 10.1007/s12517-020-06443-y Search in Google Scholar

Li B, Xu L, Shi Y, Chi Y, Liu Q, Li C. Effects of fiber type, volume fraction and aspect ratio on the flexural and acoustic emission behaviors of steel fiber reinforced concrete. Constr Build Mater. 2018;181:474–86. LiB XuL ShiY ChiY LiuQ LiC Effects of fiber type, volume fraction and aspect ratio on the flexural and acoustic emission behaviors of steel fiber reinforced concrete Constr Build Mater 2018 181 474 86 10.1016/j.conbuildmat.2018.06.065 Search in Google Scholar

Alwesabi EA, Alshaikh IMH, Abu Bakar BH, Md Akil H. Impact resistance of plain and rubberized concrete containing steel and polypropylene hybrid fiber. Mater Today Commun. 2020;25:101640. AlwesabiEA AlshaikhIMH Abu BakarBH Md AkilH Impact resistance of plain and rubberized concrete containing steel and polypropylene hybrid fiber Mater Today Commun. 2020 25 101640 10.1016/j.mtcomm.2020.101640 Search in Google Scholar

Paja˛k M, Ponikiewski T. Flexural behavior of self-compacting concrete reinforced with different types of steel fibers. Constr Build Mater. 2013;47:397–408. Paja˛kM PonikiewskiT Flexural behavior of self-compacting concrete reinforced with different types of steel fibers Constr Build Mater 2013 47 397 408 10.1016/j.conbuildmat.2013.05.072 Search in Google Scholar

ACI-544. Measurement of properties of fiber reinforced concrete. (Reapproved 1999). USA: American Concrete Institute; 1989. ACI-544 Measurement of properties of fiber reinforced concrete. (Reapproved 1999) USA American Concrete Institute 1989 Search in Google Scholar

Yazıcı H, Yardımcı MY, Aydin S, Karabulut AŞ. Mechanical properties of reactive powder concrete containing mineral admixtures under different curing regimes. Constr Build Mater. 2009;23(3):1223–31. YazıcıH YardımcıMY AydinS Karabulut Mechanical properties of reactive powder concrete containing mineral admixtures under different curing regimes Constr Build Mater 2009 23 3 1223 31 10.1016/j.conbuildmat.2008.08.003 Search in Google Scholar

Wu Z, Shi C, He W, Wu L. Effects of steel fiber content and shape on mechanical properties of ultra high performance concrete. Constr Build Mater. 2016;103:8–14. WuZ ShiC HeW WuL Effects of steel fiber content and shape on mechanical properties of ultra high performance concrete Constr Build Mater 2016 103 8 14 10.1016/j.conbuildmat.2015.11.028 Search in Google Scholar

Abu-Lebdeh T, Hamoush S, Heard W, Zornig B. Effect of matrix strength on pullout behavior of steel fiber reinforced very-high strength concrete composites. Constr Build Mater. 2011;25(1):39–46. Abu-LebdehT HamoushS HeardW ZornigB Effect of matrix strength on pullout behavior of steel fiber reinforced very-high strength concrete composites Constr Build Mater 2011 25 1 39 46 10.1016/j.conbuildmat.2010.06.059 Search in Google Scholar

eISSN:
2083-134X
Langue:
Anglais