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                      78.  N. Hameed, et al., Morphology, dynamic mechanical and thermal studies on poly(styrenecoacrylonitrile)
                           modified epoxy resin/glass fibre composites, Compos. Pt. A: Appl. Sci. Manuf. 38 (2007) 2422–2432.
                      79.  W. Goertzen, M. Kessler, Dynamic mechanical analysis of carbon/epoxy composites for structural
                           pipeline repair, Compos. Pt. B: Eng. 38 (1) (2007) 1–9.
                      80.  S. Sirivedin, D. Fenner, R. Nath, C. Galiotis, Effects of interfibre spacing and matrix cracks on stress
                           amplification factors in carbonfibre/epoxy matrix composites, Part II: Hexagonal array of fibres,
                           Compos. Pt. A: Appl. Sci. Manuf. 37 (11) (2006) 1936–1943.
                      81.  W. Goertzen, M. Kessler, Creep behavior of carbon fiber/epoxy atrix composites, Mater. Sci. Eng.
                           A: Struct. Mater. Prop. Microstruct. Process. 421 (1–2) (2006) 217–225.
                      82.  S. Yokoyama, M. Iji, Recycling of thermosetting plastic waste from electronic component production
                           processes, in: Proceedings of the 1995 IEEE International Symposium, 1995, pp. 132–137.

                      83.  P.Mou, D. Xiang, G. Duan, Products made from nonmetallic materials reclaimed from waste printed
                           circuit boards, Tsinghua Science and Technology 12 (2007) 276–283.

                      84.  J.Z. Liang, Toughening and reinforcing in rigid inorganic particle filled polypropylene: a review, J.
                           Appl. Polym. Sci. 83 (2002) 1547–1555.

                      85.  S.M. Zebarjad, et al., Fracture behaviour of isotactic polypropylene under static loading condition,
                           Mater. Des. 24 (2003) 105–109.

                      86.  B. Alcock, et al., The mechanical properties of unidirectional allpolypropylene composites, Compos.
                           Pt. A: Appl. Sci. Manuf. 37 (2006) 716–726.

                      87.  K. Yang, Q. Yang, G. Li, Y. Zhang, P. Zhang, Mechanical properties and morphologies of polypro-
                           pylene/singlefiller or hybridfiller calcium carbonate composites, Polym. Eng. Sci. 47 (2007) 95–102.

                      88.  J. Cho, M.S. Joshi, C.T. Sun, Effect of inclusion size on mechanical properties of polymeric compos-
                           ites with micro and nano particles, Compos. Sci. Technol. 66 (2006) 1941–1952.

                      89.  Y.W. Leong, M.B. Abu Bakar, Z.A. Mohd Ishak, A. Ariffin, B. Pukanszky, Comparison of the
                           mechanical properties and interfacial interactions between talc, kaolin, and calcium carbonate filled
                           polypropylene composites, J. Appl. Polym. Sci. 91 (2004) 3315–3326.
                      90.  Y. Zheng, Z. Shen, C. Cai, S. Ma, Y. Xing, The reuse of nonmetals recycled from waste printed
                           circuit boards as reinforcing fillers in the polypropylene composites, J. Hazard. Mater. (2007),
                           doi:10.1016/j.jhazmat.2008.07.008.

                      91.  R. Siddique, et al., Use of recycled plastic in concrete: a review, Waste Manage. (2007), doi:10.1016/
                           j.wasman.2007.09.011.

                      92.  X. Niu, Y. Li, Treatment ofwaste printed wire boards in electronicwaste for safe disposal, J. Hazard.
                           Mater. 145 (2007) 410–416.
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