61
Jia, L.-C., Li, Y.-K., & Yan, D.-X. (2017). Flexible and efficient electromagnetic interference
shielding materials from ground tire rubber. Carbon, 121, 267–273. https://doi.org/10.1016/j.
carbon.2017.05.100.
Kocevski, S., Yagneswaran, S., Xiao, F., Punith, V., Smith, D. W., Jr., & Amirkhanian, S. (2012).
Surface modified ground rubber tire by grafting acrylic acid for paving applications. Construction
and Building Materials, 34, 83–90. https://doi.org/10.1016/j.conbuildmat.2012.02.040.
Kowalska, E., Pasynkiewicz, S., Wielgosz, Z., Żubrowska, M., Borensztejn, M., & Kolasa,
J. (2010). Method for the manufacture of consumer products from rubber wastes. Polish patent
PL 207075.
Li, L., Liu, S., & Zhu, T. (2010). Application of activated carbon derived from scrap tires for
adsorption of Rhodamine B. Journal of Environmental Sciences, 22(8), 1273–1280. https://doi.
org/10.1016/s1001-0742(09)60250-3.
Li, Y., Zhao, S., & Wang, Y. (2012). Microbial desulfurization of ground tire rubber by
Sphingomonas sp.: A novel technology for crumb rubber composites. Journal of Polymers and
the Environment, 20(2), 372–380. https://doi.org/10.1007/s10924-011-0386-1.
Manchón, E., Macías, E., Nadal, A., Fernández, C., & Gómez, V. (2004). Preparation of mesoporous and macroporous materials from rubber of tyres wastes. Microporous and Mesoporous
Materials, 67(1), 35–41. https://doi.org/10.1016/j.micromeso.2003.10.002.
Morin, J. E., Williams, D. E., & Farris, R. J. (2002). A novel method to recycle scrap tires: Highpressure high-temperature sintering. Rubber Chemistry and Technology, 75(5), 955–968.
https://doi.org/10.5254/1.3547695.
Movahed, S. O., Ansarifar, A., & Estagy, S. (2016). Review of the reclaiming of rubber waste and
recent work on the recycling of ethylene-propylene-diene rubber waste. Rubber Chemistry and
Technology, 89(1), 54–78. https://doi.org/10.5254/rct.15.84850.
Nadal, A., Boix, M., Parres, F., Agud, L., Crespo, J. E., & Macías-García, A. (2016). Modelling the
compression behavior of ground tire rubber. Materialwissenschaft und Werkstofftechnik, 47(4),
326–334. https://doi.org/10.1002/mawe.201600499.
Naskar, A. K., Bhowmick, A. K., & De, S. K. (2002). Melt-processable rubber: Chlorinated waste
tire rubber-filled polyvinyl chloride. Journal of Applied Polymer Science, 84(3), 622–631.
https://doi.org/10.1002/app.10352.
Naskar, A.  K., De, S.  K., & Bhowmick, A.  K. (2001). Surface chlorination of ground rubber
tire and its characterization. Rubber Chemistry and Technology, 74(4), 645–661. https://doi.
org/10.5254/1.3544964.
Nieto-Márquez, A., Atanes, E., Morena, J., Fernández-Martínez, F., & Valverde, J.  L. (2016).
Upgrading waste tires by chemical activation for the capture of SO 2 . Fuel Processing
Technology, 144, 274–281. https://doi.org/10.1016/j.fuproc.2016.01.009.
Prut, E., Solomatin, D., Kuznetsova, O., Tkachenko, L., & Khalilov, D. (2015). Grinding of
ethylene- propylene-diene monomer vulcanizates: High-temperature sintering of rubber powder.
Journal of Elastomers and Plastics, 47(1), 52–68. https://doi.org/10.1177/0095244313489905.
Quadrini, F., Bellisario, D., Santo, L., & Hren, I. (2013). Direct moulding of rubber granules and
powders from tyre recycling. Applied Mechanics and Materials, 371, 315–319. https://doi.
org/10.4028/www.scientific.net/amm.371.315.
Quadrini, F., Santo, L., & Musacchi, E. (2019). A sustainable molding process for new rubber
products from tire recycling. Progress in Rubber, Plastics and Recycling Technology, 35(1),
41–55. https://doi.org/10.1177/1477760618798274.
Ratnam, C.  T., Ramarad, S., Khalid, M., & Noraini, N. (2013). Effect of pre-irradiation of
waste tire dust on the properties of ethylene vinyl acetate/waste tire dust blend (EVA/
WTD) blends. Journal of Composites and Biodegradable Polymers, 1(1), 16–22. https://doi.
org/10.12974/2311-8717.2013.01.01.3.
Schnecko, H. (1998). Rubber recycling. Macromolecular Symposia, 135(1), 327–343. https://doi.
org/10.1002/masy.19981350133.
Schulman, V. L. (2002). Post-consumer tyres in the European Union. Hannover: DIK Workshop.
4 Reactive Processing and Functionalization of Ground Tire Rubber
Précédent

- 347/711

Suivant