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    					| 利用分子动力学研究梯度纳米孪晶Cu的微观变形机理* |  
						| 周昊飞, 曲绍兴(  ) |  
					| 浙江大学工程力学系, 杭州 310027 |  
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    					| INVESTIGATION OF ATOMISTIC DEFORMATION MECHANISM OF GRADIENT NANOTWINNED COPPER USING MOLECULAR DYNAMICS SIMULATION METHOD |  
						| ZHOU Haofei, QU Shaoxing(  ) |  
						| Department of Engineering Mechanics, Zhejiang University, Hangzhou 310027 |  
								周昊飞, 曲绍兴. 利用分子动力学研究梯度纳米孪晶Cu的微观变形机理*[J]. 金属学报, 2014, 50(2): 226-230.	
																												Haofei ZHOU,
																												Shaoxing QU. 
				INVESTIGATION OF ATOMISTIC DEFORMATION MECHANISM OF GRADIENT NANOTWINNED COPPER USING MOLECULAR DYNAMICS SIMULATION METHOD[J]. Acta Metall Sin, 2014, 50(2): 226-230.
 
					
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																| [1] | Lu L, Shen Y F, Chen X H, Qian L H, Lu K. Science, 2004; 304: 422 |  
																| [2] | Lu K, Lu L, Suresh S. Science, 2009; 324: 349 |  
																| [3] | Wang Y B, Sui M L. Appl Phys Lett, 2009; 94: 021909 |  
																| [4] | Qin E W, Lu L, Tao N R, Lu K. Scr Mater, 2009; 60: 539 |  
																| [5] | Shan Z W, Lu L, Minor A M, Stach E A, Mao S W.JOM, 2008; 60: 71 |  
																| [6] | Cao A J, Wei Y G. J Appl Phys, 2007; 102: 083511 |  
																| [7] | Dao M, Lu L, Shen Y F, Suresh S. Acta Mater, 2006; 54: 5421 |  
																| [8] | Zhu T, Li J, Samanta A, Kim H G, Suresh S. PNAS, 2007; 104: 3031 |  
																| [9] | Jin Z H, Gumbsch P, Albe K, Ma E, Lu K, Gleiter H, Hahn H. Acta Mater, 2008; 56: 1126 |  
																| [10] | Li X Y, Wei Y J, Lu L, Lu K, Gao H J. Nature, 2010; 464: 877 |  
																| [11] | Zhou H F, Qu S X, Yang W. Modell Simul Mater Sci Eng, 2010; 18: 065002 |  
																| [12] | Qu S X, Zhou H F. Scr Mater, 2011; 65: 265 |  
																| [13] | Qu S X, Zhou H F, Huang Z L. Scr Mater, 2011; 65: 715 |  
																| [14] | Gleiter H. Acta Mater, 2000; 48: 1 |  
																| [15] | Kumar K S, Swygenhoven H V, Suresh S. Acta Mater, 2003; 51: 5743 |  
																| [16] | Chen J, Lu L, Lu K. Scr Mater, 2006; 54: 1913 |  
																| [17] | Knapp J A, Follstaedt D M. J Mater Res, 2004; 19: 218 |  
																| [18] | Schuh C A, Nieh T G, Iwasaki H. Acta Mater, 2003; 51: 431 |  
																| [19] | Li H Q, Ebrihimi F. Acta Mater, 2006; 54: 2877 |  
																| [20] | Schwaiger R, Moser B, Dao M, Chollacoop N, Suresh S. Acta Mater, 2003; 51: 5159 |  
																| [21] | Hanlon T, Kwon Y N, Suresh S. Scr Mater, 2003; 49: 675 |  
																| [22] | Witney A B, Sanders P G, Weertman J R. Scr Mater, 1995; 33: 2025 |  
																| [23] | Bellemare S C, Dao M, Suresh S. Mech Mater, 2008; 40: 206 |  
																| [24] | Fang T H, Li W L, Tao N R, Lu K. Science, 2011; 331: 1587 |  
																| [25] | Honeycutt J D, Andersen H C. J Phys Chem, 1987; 91: 4950 |  
																| [26] | Mishin Y, Mehl M J, Papaconstantopoulos D A, Voter A F, Kress J D. Phys Rev, 2001; 63B: 224106 |  
																| [27] | Qu S X, Wang G M, Zhou H F, Huang Z L. Comput Mater Sci, 2011; 50: 1567 |  
             
												
											    	
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