Page 142 - New Trends in Eco efficient and Recycled Concrete
P. 142
116 New Trends in Eco-efficient and Recycled Concrete
´
Grdi´ c, Z., Topliˇ ci´ c-Curˇ ci´ c, G., Risti´ c, N., Grdi´ c, D., Mitkovi´ c, P., 2014. Hydro-abrasive resis-
tance and mechanical properties of rubberized concrete. GRADEVINAR 66 (1), 11 20.
Grinys, A., Sivileviˇ cius, H., Daukˇ sys, M., 2012. Type rubber additive effect on concrete mix-
ture strength. J. Civil Eng. Manag. 18 (3), 393 401.
Guneyisi, E., Geso˘ glu, M., ¯ Ozturan, T., 2004. Properties of rubberized concretes containing
silica fume. Cem. Concr. Res. 34, 2309 2317.
Guo, Y.C., Zhang, J.H., Chen, G.M., Xie, Z.H., 2014a. Compressive behaviour of concrete
structures incorporating recycled concrete aggregates, rubber crumb and reinforced with
steel fibre, subjected to elevated temperatures. J. Clean. Prod. 72, 103 203.
Guo, Y.C., Zhang, J.H., Chen, G., Chen, G.M., Xie, Z.H., 2014b. Fracture behaviors of a
new steel fiber reinforced recycled aggregate concrete with crumb rubber. Constr. Build.
Mater. 53, 32 39.
Hall, M.R., Najim, K.B., Hopfe, C.J., 2012. Transient thermal behaviour of crumb rubber-
modified concrete and implications for thermal response and energy efficiency in build-
ings. Appl. Therm. Eng. 33 34, 77 85.
Hilal, A.A., 2011. Effect of crumb tyres rubber on some properties of foamed concrete.
Anbar J. Eng. Sci. 4 (2), 1 17.
Holmes, N., Dunne, K., O’Donnell, J., 2014. Longitudinal shear resistance of composite slabs
containing crumb rubber in concrete toppings. Constr. Build. Mater. 55, 365 378.
Huang, X., Ranade, R., Ni, W., Li, V.C., 2013. On the use of recycled tire rubber to develop
low E-modulus ECC for durability concrete repairs. Constr. Build. Mater. 46, 134 141.
Issa, C.A., Salem, G., 2013. Utilization of recycled crumb rubber as fine aggregates in con-
crete mix design. Constr. Build. Mater. 42, 48 52.
Jingfu, K., Yongqi, J., 2008. Improvement of cracking-resistance and flexural behaviour of
cement-based materials by addition of rubber particles. J. Wuhan Univ. Technol. Mater.
Sci. Ed. 379 383.
Jingfu, K., Han, C., Zhang, Z., 2009. Strength and shrinkage behaviors of roller-compacted
concrete with rubber additives. Mater. Struct. 42, 1117 1124.
Jusli, E., Md Nor, H., Jaya, R.P., Haron, Z., 2014. Chemical properties of waste tyre rubber
granules. Adv. Mater. Res. 91, 77 81.
Karahan, O., Ozbay, E., Hossain, K.M.A., Lachemi, M., Ati¸s, C.D., 2012. Fresh, mechanical,
transport, and durability properties of self-consolidating rubberized concrete. ACI
Mater. J. 109 (4), 413 420.
Khaloo, A.R., Dehestani, M., Rahmatabadi, P., 2008. Mechanical properties of concrete con-
taining a high volume of tire-rubber particles. Waste Manage. 28, 2472 2482.
Khatib, Z.K., Bayomy, F.M., 1999. Rubberized Portland cement concrete. J. Mater. Civ. Eng.
206 213.
Kumar, S., Sharma, A.K., Sherawat, D., Dutt, M., Gupta, R.C., 2017. Technical note on sorp-
tion and permeability of concrete containing rubber and quartz sandstone aggregates.
Constr. Build. Mater. 145, 311 317.
Li, G., Pang, S.S., Samuel, I.I., 2011. FRP tube encased rubberized concrete cylinders.
Mater. Struct. 44, 233 243.
Lijuan, L., Shenghua, R., Lan, Z., 2014. Mechanical properties and constitutive equations of
concrete containing a low volume of tire rubber particles. Constr. Build. Mater. 70,
291 308.
Ling, T.C., 2011. Prediction of density and compressive strength for rubberized concrete
blocks. Constr. Build. Mater. 25, 4303 4306.
Ling, T.C., 2012. Effects of compaction method and rubber dosage on the properties of con-
crete paving blocks. Constr. Build. Mater. 28, 164 175.