Review on the Broken Three-Dimensional Network Modification Methods of Waste Rubber Powder

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Abstract:

The modification methods of waste rubber powder(WRP) which contain mechanochemical, microwave, ultrasonic, devulcanization in supercritical material and microbial devulcanization method through cutting off three-dimensional network are described. More emphasis is put on devulcanization mechanism and the defects of each method as the devulcanization process is often accompanied with the main rubber chains degradation are also discussed. When modified WRP is added into rubber matrix, the mechanical properties of composite and compatibility between virgin rubber and WRP are improved. So the mode of core modification on WRP is built, through the broken three-dimensional network modification methods of WRP.

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Advanced Materials Research (Volumes 554-556)

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181-186

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July 2012

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© 2012 Trans Tech Publications Ltd. All Rights Reserved

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[1] Yi Fang, Maosheng Zhan and Ying Wang: Materials and Design Vol. 22 (2001), pp.1-2.

Google Scholar

[2] Gibala G and Hamed R: Rubber Chem Technol Vol. 67 (1994), p.636–648.

Google Scholar

[3] S. W. Kim, H. Y. Park, J. C. Lim and I. R. Jeon K: J. Appl. Polym. Sci. Vol. 105 (2007), p.2398.

Google Scholar

[4] N. Sombatsompop and C. Kumnuantip: J. Appl. Polym. Sci. Vol. 87 (2003), p.1728.

Google Scholar

[5] SEUNG-CHEOL HAN and MIN-HYEON HAN: J. Appl. Polym. Sci. Vol. 85(2002), pp.2492-2493.

Google Scholar

[6] Larissa N. Carli and Rosiana Boniatti:Materials Science and Engineering C Vol. 29 (2009), p.384.

Google Scholar

[7] Shuyan Li, Johanna Lamminmaki and Kalle Hanhi: J. Appl. Polym. Sci. Vol. 97 (2005), pp.208-217.

Google Scholar

[8] Shuyan Li: POLYMER ENGINEERING AND SCIENCE Vol. 45 (2005), pp.1239-1246.

Google Scholar

[9] Xinxing Zhang, Canhui Lu and Mei Liang: J. Polym. Res. Vol. 16 (2009), pp.411-419.

Google Scholar

[10] B. Adhikari, D. De and S. Maiti: Prog. Polym. Sci. Vol. 25 (2000), p.913.

Google Scholar

[11] M. Magini, F. Cavalieri and F. Padella: Materials Science Forum Vol. 386-388 (2002), pp.263-268.

DOI: 10.4028/www.scientific.net/msf.386-388.263

Google Scholar

[12] F. Cavalieri,F. Padella and F. Cataldo: J. Appl. Polym. Sci. Vol. 90 (2003), pp.1633-1634.

Google Scholar

[13] G. K. Jana and C. K. Das: Polymer-Plastics Technology and Engineering Vol. 44 (2005), p.1404.

Google Scholar

[14] G. K. Jana and C. K. Das: Macromolecular Research Vol. 13 (2005), pp.30-38.

Google Scholar

[15] Debapriya De, Amit Das and Debasish De: European Polymer Journal Vol. 42 (2006), p.920.

Google Scholar

[16] Debapriya De and Debasish De: Materials Sciences and Applications Vol. 2 (2011), pp.486-496.

Google Scholar

[17] J.K. Premachandra:Progress in Rubber, Plastics and Recycling Technology Vol.27(2011), pp.31-47.

Google Scholar

[18] D.G. Edirisinghe:Progress in Rubber, Plastics and Recycling Technology Vol.27(2011),pp.161-176.

Google Scholar

[19] Clark DE and Folz DC: West JK. Mater Sci Eng A Vol. 287 (2000), p.153–158.

Google Scholar

[20] Vinicios Pistor:POLYMER ENGINEERING AND SCIENCE Vol. 51 (2011), p.697.

Google Scholar

[21] D. Michael and P. Mingos: Journal of the American Chemical Society Vol. 121 (1999), p.4729.

Google Scholar

[22] ALINE ZANCHET: JOURNAL OF ELASTOMERS AND PLASTICS Vol.(2009), pp.505-506.

Google Scholar

[23] Liliane Landini and Sumair Gouveia de Araújo: European Polymer Journal Vol.43 (2007), p.2730.

Google Scholar

[24] C.H. Scuracchio: Journal of Thermal Analysis and Calorimetry Vol.87(2007),p.896.

Google Scholar

[25] A.TUKACHINSKY, D.SCHWORM, A.I.ISAYEV: Rubber Chem Technol Vol. 69 (1995),p.92.

Google Scholar

[26] A.I. ISAYEV, S. P. YUSHANOV and J. CHEN: J. Appl. Polym. Sci. Vol. 58 (1996), pp.803-813.

Google Scholar

[27] V.V.YASHIN and A.I. ISAYEV: Rubber Chem Technol Vol. 72 (1998), pp.741-742.

Google Scholar

[28] V.V.YASHIN and A.I. ISAYEV: Rubber Chem Technol Vol. 73 (1999), pp.325-326.

Google Scholar

[29] Avraam I. Isayev,Sergei P. Yushanov and Seok-Ho Kim: Rheol Acta Vol. 35 (1996), pp.616-630.

Google Scholar

[30] Ximei Sun and Avraam I. Isayev: J Mater Sci Vol. 42 (2007), pp.7520-7529.

Google Scholar

[31] XIMEI SUN and A. I. ISAYEV: Rubber Chem Technol Vol. 81 (2007), p.28.

Google Scholar

[32] M. TAPALE and A. I. ISAYEV: J. Appl. Polym. Sci. Vol. 70 (1998), p.2007–2019.

Google Scholar

[33] EDUARDO A.GONZALEZ-DE SANTOS: Rubber Chem Technol Vol. 72 (1999), pp.854-861.

Google Scholar

[34] M.KOJIMA: 160th Meeting of the Rubber Division, American Chemical Society (2001), pp.1-10.

Google Scholar

[35] Masaaki Kojima,Masatoshi Tosaka and Yuko Ikeda:Green Chem. Vol. 6 (2004), pp.84-89.

Google Scholar

[36] M.KOJIMA, K.OGAWA and H.MIZOSHIMA: Rubber Chem Technol Vol.76 (2003), pp.957-968.

Google Scholar

[37] Masaaki Kojima, Masatoshi Tosaka,Yuko Ikeda: J. Appl. Polym. Sci. Vol. 95 (2005), p.137–143.

Google Scholar

[38] JIN KUK KIM and JIN W. PARK: J. Appl. Polym. Sci. Vol. 72 (1999), pp.1543-1549.

Google Scholar

[39] Katarina Bredberg: Progress in Rubber and Plastics Technology Vol. 17 (2001), pp.149-161.

Google Scholar

[40] Robert A. Romine: Polymer Degradation and Stability Vol. 59 (1998), pp.353-358.

Google Scholar

[41] K. Bredberg, J.Persson and M. Christiansson: Appl Microbiol Biotechnol Vol. 55 (2011), pp.43-48.

Google Scholar

[42] Guangming Jiang and Suhe Zhao: Polymers advanced technologies Vol. 22 (2010), pp.2344-2351.

Google Scholar

[43] Olle Holst, Bengt Stenberg,Magdalena Christiansson. Biodegradation Vol. 9 (1998), pp.301-310.

Google Scholar

[44] Guangming,Jiang and Suhe Zhao: J. Appl. Polym. Sci. Vol. 116 (2010), p.2768–2774.

Google Scholar

[45] Keri Stevenson, Bethan Stallwood and Adam G. Hart: Bioremediation Journal Vol. 12 (2008), p.5.

Google Scholar

[46] Yuanhu Li and Suhe Zhao: Polymer Degradation and Stability Vol. 96 (2011), pp.1662-1668.

Google Scholar