INVESTIGATION ON ANISOTROPY OF DYNAMIC COMPRESSIVE MECHANICAL PROPERTIES OF COLD--ROLLED Cu SHEET
CHEN Zhiyong1; CAI Hongnian2; WANG Fuchi2; TAN Chengwen2; ZHAN Congkun1; LIU Chuming1
1. School of Materials Science and Engineering; Central South University; Changsha 410083
2. School of Materials Science and Engineering; Beijing Institute of Technology; Beijing 100081
Cite this article:
CHEN Zhiyong CAI Hongnian WANG Fuchi TAN Chengwen ZHAN Congkun LIU Chuming. INVESTIGATION ON ANISOTROPY OF DYNAMIC COMPRESSIVE MECHANICAL PROPERTIES OF COLD--ROLLED Cu SHEET. Acta Metall Sin, 2009, 45(2): 143-150.
The quasi–static and dynamic compressive mechanical properties of cold–rolled and annealed Cu sheets were investigated by means of Instron apparatus and Split–Hopkinson pressure bar (SHPB) technology, respectively. Cylindrical specimens of textured Cu sheets, which were cut with the
cylinder axes along the rolling direction (RD), transverse direction (TD) and normal direction (ND), were compressed at strain rates in the range of 10−3 to 103 s−1. The compressive stress-strain curves show all that the flow stresses for both cold rolled and annealed Cu sheets increase with the increase of strain rate and the obvious effect of strain rate hardening has been observed. The quasi–static and dynamic compressive mechanical properties of the cold rolled Cu sheet exhibit pronounced anisotropy, both the yield strength and flow stresses at the low deformation degree for the TD direction are the maximum, while those for the RD direction are the minimum. The properties of annealed Cu sheet are isotropic. Taking into account of possible mechanism for quasi–static and dynamic plastic deformation, the mechanical anisotropy of textured Cu sheets could be explained qualitatively by Taylor model based on the microscopic crystal plasticity theory.
[1] Glenn T, Bradley W. Metall Trans, 1973; 4A: 2343
[2] Tang N Y, Niessen P, Pick R J, Worswick M J. Mater Sci Eng, 1991; A131: 153
[3] Andrade U R, Meyers M A, Chokshi A H. Scr Metall Mater, 1994; 30: 933
[4] Sanchez J C, Murr L E, Staudhammer K P. Acta Mater, 1997; 45: 3223
[5] Kiritani M, Satoh Y, Kizuka Y, Arakawa K, Ogasawara Y, Arai S, Shimomura Y. Philos Mag Lett, 1999; 79: 797
[6] Jia D, Ramesh K T, Ma E, Lu L, Lu K. Scr Mater, 2001; 45: 613
[7] Stevenson M E, Jones S E, Bradt R C. Mater Sci Res Int, 2003; 9: 187
[8] Gourdin W H, Lassila D H. Acta Metall Mater, 1991; 39: 2337
[9] Gourdin W H, Lassila D H. Mater Sci Eng, 1992; A151: 11
[10] Meyers M A, Andrade U R, Chokshi A R. Metall Mater Trans, 1995; 26A: 2881
[11] Nemat–Nasser S, Li Y L. Acta Mater, 1998; 46: 565
[12] Wang L L. Foundation of Stress Waves. Beijing: National Defense Industry Press, 2005: 52
(王礼立. 应力波基础. 北京: 国防工业出版社, 2005: 52)
[13] Bunge H J. Texture Analysis in Materials Science—Mathematical Methods. London: Butterworths, 1982: 47
[14] Klepaczko J R. J Phys Colloque, 1988; 49: 553
[15] Follansbee P S, Kocks U F. Acta Metall, 1988; 36: 81
[16] Tong W, Clifton R J, Huang S. J Mech Phys Solids, 1992;40: 1251
[17] Chin G Y, Mendorf D R, Hosford W F. Proc Roy Soc,1969; 309A: 433
[18] Hirsch J, LÜcke K, Hatherly M. Acta Metall, 1988; 36:2905
[19] El–Danaf E, Kalidindi S R, Doherty R D. Int J Plast,2001; 17: 1245
[20] Szczerba M S, Bajor T, Tokarski T. Philos Mag, 2004; 84:481
[21] Chen Z Y, Zhang X M, Liu C M, Zhou Z P, Li S Y. J Mater Sci, 2002; 37: 2843
[22] Sachs E. Z Ver Deut Ing, 1928; 72: 734
[23] Taylor G I. J Inst Met, 1938; 62: 307
[24] Van Houtte P. In: Nagashima S ed., Proc 6th Int Conf on Textures of Materials. Tokyo: Iron and Steel Institute of Japan, 1981: 428
[25] Fortunier R, Driver J H. Acta Metall, 1987; 35: 509
[26] Mao W M. Mater Sci Eng, 1998; A257: 171
[27] Bishop J F W, Hill R. Philos Mag, 1951; 42: 414
[28] Bishop J F W, Hill R. Philos Mag, 1951; 42: 1298
[29] Chen Z Y, Cai H N, Zhang X M, Wang F C, Tan C W. Sci China, 2006; 49E: 521