Use of steel fibres recovered from waste tyres as reinforcement in concrete: pull-out behaviour, compressive and flexural strength.

The increasing amount of waste tyres worldwide makes the disposition of tyres a relevant problem to be solved. In the last years over three million tons of waste tyres were generated in the EU states [ETRA, 2006. Tyre Technology International - Trends in Tyre Recycling. http://www.etra-eu.org]; most of them were disposed into landfills. Since the European Union Landfill Directive (EU Landfill, 1999) aims to significantly reduce the landfill disposal of waste tyres, the development of new markets for the tyres becomes fundamental. Recently some research has been devoted to the use of granulated rubber and steel fibres recovered from waste tyres in concrete. In particular, the concrete obtained by adding recycled steel fibres evidenced a satisfactory improvement of the fragile matrix, mostly in terms of toughness and post-cracking behaviour. As a consequence RSFRC (recycled steel fibres reinforced concrete) appears a promising candidate for both structural and non-structural applications. Within this context a research project was undertaken at the University of Salento (Italy) aiming to investigate the mechanical behaviour of concrete reinforced with RSF (recycled steel fibres) recovered from waste tyres by a mechanical process. In the present paper results obtained by the experimental work performed up to now are reported. In order to evaluate the concrete-fibres bond characteristics and to determine the critical fibre length, pull-out tests were initially carried out. Furthermore compressive strength of concrete was evaluated for different volume ratios of added RSF and flexural tests were performed to analyze the post-cracking behaviour of RSFRC. For comparison purposes, samples reinforced with industrial steel fibres (ISF) were also considered. Satisfactory results were obtained regarding the bond between recycled steel fibres and concrete; on the other hand compressive strength of concrete seems unaffected by the presence of fibres despite their irregular geometric properties. Finally, flexural tests furnished in some cases results comparable to those obtained when using ISF as concerns the post-cracking behaviour.

[1]  R. Siddique,et al.  Properties of concrete containing scrap-tire rubber--an overview. , 2004, Waste management.

[2]  Y. Mohammadi,et al.  Properties of steel fibrous concrete containing mixed fibres in fresh and hardened state , 2008 .

[3]  C. Ferraris,et al.  Workability, mechanical properties, and chemical stability of a recycled tyre rubber-filled cementitious composite , 1998 .

[4]  N. I. Fattuhi,et al.  Cement-based materials containing shredded scrap truck tyre rubber , 1996 .

[5]  Fatih Altun,et al.  Effects of steel fiber addition on mechanical properties of concrete and RC beams , 2007 .

[6]  Kyriacos Neocleous,et al.  Stress-strain characteristic of SFRC using recycled fibres , 2005 .

[7]  K. Pilakoutas,et al.  Design Issues for Concrete Reinforced with Steel Fibers, Including Fibers Recovered from used Tires , 2006 .

[8]  Houssam Toutanji,et al.  The use of rubber tire particles in concrete to replace mineral aggregates , 1996 .

[9]  V. S. Gopalaratnam,et al.  Measurement of Properties of Fiber Reinforced Concrete , 1988 .

[10]  L. Feo Guide for the Design and Construction of Fiber-Reinforced Concrete Structures , 2007 .

[11]  Şemsi Yazıcı,et al.  Effect of aspect ratio and volume fraction of steel fiber on the mechanical properties of SFRC , 2007 .

[12]  I. Joekes,et al.  Use of tire rubber particles as addition to cement paste , 2000 .

[13]  lker Bekir Topçu,et al.  Analysis of rubberized concrete as a composite material , 1997 .

[14]  Bernhard Maidl,et al.  Steel Fibre Reinforced Concrete , 1995 .