Fibre reinforcement increases the toughness of plain concrete under static compressive loading. The compressive toughness of fibre-reinforced concrete (FRC) under impact loading has not, however, previously been investigated. The current paper reviews the behaviour of high-strength fibre-reinforced concrete under uniaxial compressive impact loading. An instrumented drop weight impact machine was used to carry out compressive impact tests on various FRC systems with compressive strengths ranging from about 60 MPa to 120 MPa. The deformations of the FRC cylinders were determined using a high-speed video camera system. As expected, the compressive strength was found to increase with increasing drop height (or impact velocity). The dynamic compressive toughness was also found to increase with increasing drop height and with increasing matrix strength. It was observed that the mode of failure of the FRC was dependent upon the properties of the matrix and of the fibres, as well as on the drop height. Thus, the dynamic compressive toughness of FRC appeared to be dependent on the constitutive behaviour of the matrix, the fibre type and volume, the impact velocity and the mode of failure.
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February 2009
Research Article|
February 01 2009
Impact resistance of fibre-reinforced concrete Available to Purchase
S. Mindess, PEng, PhD;
S. Mindess, PEng, PhD
Professor Emeritus
Department of Civil Engineering, University of British Columbia
Vancouver, Canada
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L. Zhang, PhD
L. Zhang, PhD
Materials Engineer
AMEC Earth and Environmental
Burnaby, British Columbia, Canada
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Publisher: Emerald Publishing
Received:
November 09 2007
Accepted:
May 15 2008
Online ISSN: 1751-7702
Print ISSN: 0965-0911
© 2009 Thomas Telford Ltd
2009
Proceedings of the Institution of Civil Engineers - Structures and Buildings (2009) 162 (1): 69–76.
Article history
Received:
November 09 2007
Accepted:
May 15 2008
Citation
Mindess S, Zhang L (2009), "Impact resistance of fibre-reinforced concrete". Proceedings of the Institution of Civil Engineers - Structures and Buildings, Vol. 162 No. 1 pp. 69–76, doi: https://doi.org/10.1680/stbu.2009.162.1.69
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