TY - JOUR
T1 - Experimental assessment and constitutive modelling of rubberised concrete materials
AU - Bompa, D. V.
AU - Elghazouli, A. Y.
AU - Xu, B.
AU - Stafford, P. J.
AU - Ruiz-Teran, A. M.
N1 - Funding Information:
The authors acknowledge the financial support of the European Union Seventh Framework Programme FP7/2007-2013 under grant agreement No 603722 within the project ‘Anagennisi: Innovative Use of all Tyre Components in Concrete’ for the tests described in this paper. The discussions with collaborators within the project, particularly from the University of Sheffield, are gratefully acknowledged. The authors would also like to thank the technical staff of the Structures Laboratories at Imperial College London, particularly Mr. T. Stickland, for their assistance with the experimental work. The support of Adria Abruzzo, Hope Construction Materials, Elkem and Sika through the provided materials is gratefully acknowledged.
Publisher Copyright:
© 2017 Elsevier Ltd
PY - 2017/4/15
Y1 - 2017/4/15
N2 - This paper focuses on examining the uniaxial behaviour of concrete materials incorporating rubber particles, obtained from recycled end-of-life tyres, as a replacement for mineral aggregates. A detailed account of a set of material tests on rubberised concrete cylindrical samples, in which fine and coarse mineral aggregates are replaced in equal volumes by rubber particles with various sizes, is presented. The experimental results carried out in this investigation, combined with detailed examination of data available from previous tests on rubberised concrete materials, show that the rubber particles influence the mechanical properties as a function of the quantity and type of the mineral aggregates replaced. Experimental evaluation of the complete stress-strain response depicts reductions in compressive strength, elastic modulus, and crushing strain, with the change in rubber content. Enhancement is also observed in the energy released during crushing as well as in the lateral strain at crushing, primarily due to the intrinsic deformability of the interfacial clamping of rubber particles which leads to higher lateral dilation of the material. The test results and observations enable the definition of a series of expressions to estimate the mechanical properties of rubberised concrete materials. An analytical model is also proposed for the detailed assessment of the complete stress-strain response as a function of the volumetric rubber ratio. Validations performed against the material tests carried out in this study, as well as those from previous investigations on rubberised concrete materials, show that the proposed models offer reliable predictions of the mechanical properties including the full axial and lateral stress-strain response of concrete materials incorporating rubber particles.
AB - This paper focuses on examining the uniaxial behaviour of concrete materials incorporating rubber particles, obtained from recycled end-of-life tyres, as a replacement for mineral aggregates. A detailed account of a set of material tests on rubberised concrete cylindrical samples, in which fine and coarse mineral aggregates are replaced in equal volumes by rubber particles with various sizes, is presented. The experimental results carried out in this investigation, combined with detailed examination of data available from previous tests on rubberised concrete materials, show that the rubber particles influence the mechanical properties as a function of the quantity and type of the mineral aggregates replaced. Experimental evaluation of the complete stress-strain response depicts reductions in compressive strength, elastic modulus, and crushing strain, with the change in rubber content. Enhancement is also observed in the energy released during crushing as well as in the lateral strain at crushing, primarily due to the intrinsic deformability of the interfacial clamping of rubber particles which leads to higher lateral dilation of the material. The test results and observations enable the definition of a series of expressions to estimate the mechanical properties of rubberised concrete materials. An analytical model is also proposed for the detailed assessment of the complete stress-strain response as a function of the volumetric rubber ratio. Validations performed against the material tests carried out in this study, as well as those from previous investigations on rubberised concrete materials, show that the proposed models offer reliable predictions of the mechanical properties including the full axial and lateral stress-strain response of concrete materials incorporating rubber particles.
UR - http://www.scopus.com/inward/record.url?scp=85011665633&partnerID=8YFLogxK
U2 - 10.1016/j.conbuildmat.2017.01.086
DO - 10.1016/j.conbuildmat.2017.01.086
M3 - Journal article
AN - SCOPUS:85011665633
SN - 0950-0618
VL - 137
SP - 246
EP - 260
JO - Construction and Building Materials
JF - Construction and Building Materials
ER -