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    [19] Jamaati R, Amirkhanlou S, Toroghinejad M R, et al。 Comparison of the microstructure and mechanical properties of as-cast A356/SiC MMC processed by ARB and CAR methods [J]。 Journal of materials engineering and performance, 2012, 21(7): 1249-1253

    [20] Eizadjou M, Kazemi Talachi A, Danesh Manesh H, et al。 Investigation of structure and mechanical properties of multi-layered Al/Cu composite produced by accumulative roll bonding (ARB) process[J]。 Composites Science and Technology, 2008, 68(9): 2003-2009

    [21] Sun Y, Tsuji N, Kato S, et al。 Fabrication of bulk metallic glass sheet in Cu-47 at% Zr alloys by ARB and heat treatment[J]。 Materials transactions, 2007, 48(7): 1605-1609

    [22] Ghalandari L, Moshksar M M。 High-strength and high-conductive Cu/Ag multilayer produced by ARB[J]。 Journal of Alloys and Compounds, 2010, 506(1): 172-178

    [23] Carpenter J S, Vogel S C, LeDonne J E, et al。 Bulk texture evolution of Cu–Nb nanolamellar composites during accumulative roll bonding[J]。 Acta Materialia, 2012, 60(4): 1576-1586

    [24] Tayyebi M, Eghbali B。 Study on the microstructure and mechanical properties of multilayer Cu/Ni composite processed by accumulative roll bonding[J]。 Materials Science and Engineering: A, 2013, 559: 759-764

    [25] Jamaati R, Toroghinejad M R。 Application of ARB process for manufacturing high-strength, finely dispersed and highly uniform Cu/Al2O3 composite[J]。 Materials Science and Engineering: A, 2010, 527: 7430–7435

    [26] Miyajima Y, Abe H, Fujii T, et al。 Effects of Si on mechanical properties and microstructure evolution in ultrafine-grained Cu–Si alloys processed by accumulative roll bonding[J]。 Acta Materialia, 2013, 61(5): 1537-1544

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