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Erschienen in: Fire Technology 5/2014

01.09.2014

High Strength Polypropylene Fibre Reinforcement Concrete at High Temperature

verfasst von: Farhad Aslani, Bijan Samali

Erschienen in: Fire Technology | Ausgabe 5/2014

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Abstract

Concrete is an inherently brittle material with a relatively low tensile strength compared to compressive strength. Reinforcement with randomly distributed short fibres presents an effective approach to the stabilization of the crack and improving the ductility and tensile strength of concrete. A variety of fibre types, including steel, synthetics, and natural fibres, have been applied to concrete. Polypropylene (PP) fibre reinforcement is considered to be an effective method for improving the shrinkage cracking characteristics, toughness, and impact resistance of concrete materials. Also, the use of PP fibre has been recommended by all of the researchers to reduce and eliminate the risk of the explosive spalling in high strength concrete at elevated temperatures. In this study, constitutive relationships are developed for normal and high-strength PP fibre reinforcement concrete (PPFRC) subjected to high temperatures to provide efficient modelling and specify the fire-performance criteria for concrete structures. They are developed for unconfined PPFRC specimens that include compressive and tensile strengths, elastic modulus, modulus of rupture, strain at peak stress as well as compressive stress–strain relationships at elevated temperatures. The proposed relationships at elevated temperature are compared with experimental results. These results are used to establish more accurate and general compressive stress–strain relationships prediction. Further experimental results for tension and the other main parameters at elevated temperature are needed in order to establish well-founded models and to improve the proposed constitutive relationships, which are general, rational, and fit well with the experimental results.

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Literatur
1.
Zurück zum Zitat Alhozaimy AM, Soroushian P, Mirza F (1996) Mechanical properties of polypropylene fiber reinforced concrete and the effect of pozzolanic materials Cem Concr Compos 18(2):85–92CrossRef Alhozaimy AM, Soroushian P, Mirza F (1996) Mechanical properties of polypropylene fiber reinforced concrete and the effect of pozzolanic materials Cem Concr Compos 18(2):85–92CrossRef
2.
Zurück zum Zitat Allan ML, Kukacha LE (1995) Strength and ductility of polypropylene fiber reinforced grouts. Cem Concr Res 25(3):511–521 Allan ML, Kukacha LE (1995) Strength and ductility of polypropylene fiber reinforced grouts. Cem Concr Res 25(3):511–521
3.
Zurück zum Zitat Aslani F, Bastami M (2011) Constitutive relationships for normal- and high-strength concrete at elevated temperatures. ACI Mater J 108(4):355–364 Aslani F, Bastami M (2011) Constitutive relationships for normal- and high-strength concrete at elevated temperatures. ACI Mater J 108(4):355–364
4.
Zurück zum Zitat Aslani F (2012) Prestressed concrete thermal behaviour. Mag Concr Res 65(3):158–171CrossRef Aslani F (2012) Prestressed concrete thermal behaviour. Mag Concr Res 65(3):158–171CrossRef
5.
Zurück zum Zitat Aslani F, Jowkarmeimandi J (2012) Stress–strain model for concrete under cyclic loading. Mag Concr Res 64(8):673–685CrossRef Aslani F, Jowkarmeimandi J (2012) Stress–strain model for concrete under cyclic loading. Mag Concr Res 64(8):673–685CrossRef
7.
Zurück zum Zitat Behnood A, Ghandehari M (2009) Comparison of compressive and splitting tensile strength of high-strength concrete with and without polypropylene fibers heated to high temperatures. Fire Saf J 44:1015–1022CrossRef Behnood A, Ghandehari M (2009) Comparison of compressive and splitting tensile strength of high-strength concrete with and without polypropylene fibers heated to high temperatures. Fire Saf J 44:1015–1022CrossRef
8.
Zurück zum Zitat Chen B, Liu J (2004) Residual strength of hybrid-fiber-reinforced high-strength concrete after exposure to high temperatures. Cem Concr Res 34(6):1065–1069CrossRef Chen B, Liu J (2004) Residual strength of hybrid-fiber-reinforced high-strength concrete after exposure to high temperatures. Cem Concr Res 34(6):1065–1069CrossRef
9.
Zurück zum Zitat Fib Bulletin 46 (2008) Fire design of concrete structures—structural behaviour and assessment, Chap 6. In: Expertise and assessment of materials and structures after fire, State-of-art report Fib Bulletin 46 (2008) Fire design of concrete structures—structural behaviour and assessment, Chap 6. In: Expertise and assessment of materials and structures after fire, State-of-art report
10.
Zurück zum Zitat Giaccio GM, Zerbino RL (2005) Mechanical behaviour of thermally damaged high-strength steel fibre reinforced concrete. Mater Struct 38(3):335–342CrossRef Giaccio GM, Zerbino RL (2005) Mechanical behaviour of thermally damaged high-strength steel fibre reinforced concrete. Mater Struct 38(3):335–342CrossRef
11.
Zurück zum Zitat Li M, Qian CX, Sun W (2004) Mechanical properties of high-strength concrete after fire. Cem Concr Res 34(6):1001–1005CrossRef Li M, Qian CX, Sun W (2004) Mechanical properties of high-strength concrete after fire. Cem Concr Res 34(6):1001–1005CrossRef
12.
Zurück zum Zitat Komonen J, Penttala V (2003) Effect of high temperature on the pore structure and strength of plain and polypropylene fiber reinforced cement pastes. Fire Technol 39(1):23–34CrossRef Komonen J, Penttala V (2003) Effect of high temperature on the pore structure and strength of plain and polypropylene fiber reinforced cement pastes. Fire Technol 39(1):23–34CrossRef
13.
Zurück zum Zitat Malhotra HL (1982) Design of fire-resisting structures. Surrey University Press, London Malhotra HL (1982) Design of fire-resisting structures. Surrey University Press, London
14.
Zurück zum Zitat Noumowe A (2005) Mechanical properties and microstructure of high strength concrete containing polypropylene fibres exposed to temperatures up to 200°C. Cem Concr Res 35:2192–2198CrossRef Noumowe A (2005) Mechanical properties and microstructure of high strength concrete containing polypropylene fibres exposed to temperatures up to 200°C. Cem Concr Res 35:2192–2198CrossRef
15.
Zurück zum Zitat Peng GF, Yang WW, Zhao J, Liu YF, Bian SH, Zhao LH (2006) Explosive spalling and residual mechanical properties of fiber-toughened high-performance concrete subjected to high temperatures. Cem Concr Res 36:723–727CrossRef Peng GF, Yang WW, Zhao J, Liu YF, Bian SH, Zhao LH (2006) Explosive spalling and residual mechanical properties of fiber-toughened high-performance concrete subjected to high temperatures. Cem Concr Res 36:723–727CrossRef
16.
Zurück zum Zitat Pliya P, Beaucour AL, Noumowé A (2011) Contribution of cocktail of polypropylene and steel fibres in improving the behaviour of high strength concrete subjected to high temperature. Constr Build Mater 25(4):1926–1934CrossRef Pliya P, Beaucour AL, Noumowé A (2011) Contribution of cocktail of polypropylene and steel fibres in improving the behaviour of high strength concrete subjected to high temperature. Constr Build Mater 25(4):1926–1934CrossRef
17.
Zurück zum Zitat Poon CS, Shui ZH, Lam L (2004) Compressive behavior of fiber reinforced high-performance concrete subjected to elevated temperature. Cem Concr Res 34(12):2215–2222CrossRef Poon CS, Shui ZH, Lam L (2004) Compressive behavior of fiber reinforced high-performance concrete subjected to elevated temperature. Cem Concr Res 34(12):2215–2222CrossRef
18.
Zurück zum Zitat Schneider U (1985) Properties of materials at high temperatures—concrete. RILEM Committee 44, PHT, University of Kassel, Kassel Schneider U (1985) Properties of materials at high temperatures—concrete. RILEM Committee 44, PHT, University of Kassel, Kassel
19.
Zurück zum Zitat Sideris KK, Manita P, Chaniotakis E (2009) Performance of thermally damaged fiber reinforced concretes. Constr Build Mater 23(3):1232–1239CrossRef Sideris KK, Manita P, Chaniotakis E (2009) Performance of thermally damaged fiber reinforced concretes. Constr Build Mater 23(3):1232–1239CrossRef
20.
Zurück zum Zitat Suhaendi SL, Horiguchi T (2006) Effect of short fibers on residual permeability and mechanical properties of hybrid fibre reinforced high strength concrete after heat exposition. Cem Concr Res 36:1672–1678CrossRef Suhaendi SL, Horiguchi T (2006) Effect of short fibers on residual permeability and mechanical properties of hybrid fibre reinforced high strength concrete after heat exposition. Cem Concr Res 36:1672–1678CrossRef
21.
Zurück zum Zitat Xiao J. Falkner H (2006) On residual strength of high-performance concrete with and without polypropylene fibres at elevated temperatures. Fire Saf J, 41:115–121CrossRef Xiao J. Falkner H (2006) On residual strength of high-performance concrete with and without polypropylene fibres at elevated temperatures. Fire Saf J, 41:115–121CrossRef
Metadaten
Titel
High Strength Polypropylene Fibre Reinforcement Concrete at High Temperature
verfasst von
Farhad Aslani
Bijan Samali
Publikationsdatum
01.09.2014
Verlag
Springer US
Erschienen in
Fire Technology / Ausgabe 5/2014
Print ISSN: 0015-2684
Elektronische ISSN: 1572-8099
DOI
https://doi.org/10.1007/s10694-013-0332-y

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