60
Dobrotă, D., & Dobrotă, G. (2018). An innovative method in the regeneration of waste rubber
and the sustainable development. Journal of Cleaner Production, 172, 3591–3599. https://doi.
org/10.1016/j.jclepro.2017.03.022.
Du, M. L., Guo, B. C., & Jia, D. M. (2005). Effects of thermal and UV-induced grafting of bismaleimide on mechanical performance of reclaimed rubber/natural rubber blend. Journal of
Polymer Research, 12(6), 473–482. https://doi.org/10.1007/s10965-005-3046-0.
ETRMA. (2015). End-of-life tyre Report available online on 20 May 2019: http://www.etrma.org/
uploads/Modules/Documentsmanager/elt-report-v9a%2D%2D-final.pdf
Fan, P., & Lu, C. H. (2011). Surface graft copolymerization of poly(methyl methacrylate) onto
waste tire rubber powder through ozonisation. Journal of Applied Polymer Science, 122(4),
2262–2270. https://doi.org/10.1002/app.34329.
Ferrer-Giménez, C., López-Martínez, J., Nadal-Gisbert, A., Cuerda-Correa, E.  M., & MacíasGarcía, A. (2009). Characterisation of elastomer prepared from ground Tyre rubber:
Morphological and granulometric study. Plastics, Rubber and Composites, 38(5), 195–200.
https://doi.org/10.1179/174328909x388026.
Formela, K., & Cysewska, M. (2014). Efficiency of thermomechanical reclaiming of ground
tire rubber conducted in counter-rotating and co-rotating twin screw extruder. Polimery, 59,
231–238. https://doi.org/10.14314/polimery.2014.231.
Formela, K., & Haponiuk, J. (2014). Curing characteristics, mechanical properties and morphology of butyl rubber filled with ground tire rubber (GTR). Iranian Polymer Journal, 23(3),
185–194. https://doi.org/10.1007/s13726-013-0214-7.
Fuhrmann, I., & Karger-Kocsis, J. (2003). Photoinitiated grafting of glycidyl methacrylate and
methacrylic acid on ground tire rubber. Journal of Applied Polymer Science, 89(6), 1622–1630.
https://doi.org/10.1002/app.12351.
Gągol, M., Boczkaj, G., Haponiuk, J., & Formela, K. (2015). Investigation of volatile low
molecular weight compounds formed during continuous reclaiming of ground tire rubber. Polymer Degradation and Stability, 119, 113–120. https://doi.org/10.1016/j.
polymdegradstab.2015.05.007.
García, D., López, J., Balart, R., Ruseckaite, R. A., & Stefani, P. M. (2007). Composites based
on sintering rice husk–waste tire rubber mixtures. Materials and Design, 28(7), 2234–2238.
https://doi.org/10.1016/j.matdes.2006.06.001.
Gibala, D., & Hamed, G.  R. (1994). Cure and mechanical behavior of rubber compounds containing ground vulcanizates. Part I: Cure behavior. Rubber Chemistry and Technology, 67(4),
636–648. https://doi.org/10.5254/1.3538699.
Gibala, D., Laohapisitpanich, K., Thomas, D., & Hamed, G.  R. (1996). Cure and mechanical
behavior of rubber compounds containing ground vulcanizates. Part II: Mooney viscosity.
Rubber Chemistry and Technology, 69(1), 115–119. https://doi.org/10.5254/1.3538351.
Gibala, D., Thomas, D., & Hamed, G. R. (1999). Cure and mechanical behavior of rubber compounds containing ground vulcanizates. Part III. Tensile and tear strength. Rubber Chemistry
and Technology, 72(2), 357–360. https://doi.org/10.5254/1.3538807.
Gugliemotti, A., Lucignano, C., & Quadrini, F. (2012). Production of rubber parts by tyre recycling
without using virgin materials. Plastics, Rubber and Composites, 41(1), 40–46. https://doi.
org/10.1179/1743289811y.0000000010.
Hernández, E.  H., JFH, G., Cepeda, L.  F., EJC, M., Corral, F.  S., SGS, R., Velázquez, G.  N.,
Morones, P. G., & DIS, M. (2017). Sulfuric acid treatment of ground tire rubber and its effect
on the mechanical and thermal properties of polypropylene composites. Journal of Applied
Polymer Science, 134(21), 44864. https://doi.org/10.1002/app.44864.
Hrdlicka, Z., Kuta, A., Hrdlickova, M., & Duchacek, V. (2011). Properties of natural and synthetic rubber recycled via high-pressure high-temperature sintering. KGK-Kaut Gummi
Kunst 64:22–25. Available in: https://www.kgk-rubberpoint.de/wp-content/uploads/migrated/
paid:content/artikel/1302.pdf
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