• 1996年-2000年,复旦大学,环境科学与工程系,理学学士
• 2000年-2003年,美国新墨西哥矿业和科技学院,材料工程系,工学硕士
• 2003年-2007年,美国新墨西哥矿业和科技学院,材料工程系,工学博士
• 2008年-2010年,美国西北大学,材料科学与工程系,博士后
• 2010年-2011年,美国新墨西哥矿业和科技学院,材料工程系,博士后
• 2011年-至今,上海交通大学轻合金精密成型国家工程研究中心,讲师
[1] Ye B, Matsen MR, Dunand DC. Enhanced densification of Ti-6Al-4V/TiC powder blends by transformation mismatch plasticity. Journal of Materials Research 2013:1(doi: 10.1557/jmr.2013.95).
[2] Zhou H, Wang QD, Ye B, Guo W. Hot deformation and processing maps of as-extruded Mg–9.8Gd–2.7Y–0.4Zr Mg alloy. Mater. Sci. Eng. A 2013;576:101.
[3] Wang H, Wang Q, Yin D, Yuan J, Ye B. Tensile creep behavior and microstructure evolution of extruded Mg–10Gd–3Y–0.5Zr (wt%) alloy. Mater. Sci. Eng. A 2013;578:150.
[4] Guo W, Wang Q, Ye B, Zhou H. Enhanced microstructure homogeneity and mechanical properties of AZ31–Si composite by cyclic closed-die forging. J Alloy Compd 2013;552:409-417.
[5] Guo W, Wang Q, Ye B, Zhou H. Microstructure and mechanical properties of AZ31 magnesium alloy processed by cyclic closed-die forging. J Alloy Compd 2013;558:164-171.
[6] Yuan J, Wang Q, Yin D, Wang H, Chen C, Ye B. Creep behavior of Mg–9Gd–1Y–0.5Zr (wt.%) alloy piston by squeeze casting. Mater Charact 2013;78:37-46.
[7] Liang ZX, Ye B, Zhang L, Wang QG, Yang WY, Wang QD. A new high-strength and corrosion-resistant Al–Si based casting alloy. Mater Lett 2013;97:104-107.
[8] Miao J, Ye B, Wang Q, Peng T. Mechanical properties and corrosion resistance of Mg–10Gd–2Y–0.5Zr alloy by hot extrusion solid-state recycling. J Alloy Compd 2013;561:184.
[9] 梁振兴, 叶兵(通讯作者). A380铝合金部件压铸充型、凝固过程的数值模拟. 热加工工艺 2013.(接受,稿件编号:2013013000388)
[10] Ye B, Matsen M, Dunand D. Finite-Element Modeling of Titanium Powder Densification. Metall. Mater. Trans. A 2012;43:381-390.
[11] Guo W, Wang QD, Ye B, Liu MP, Peng T, Liu XT, Zhou H. Enhanced microstructure homogeneity and mechanical properties of AZ31 magnesium alloy by repetitive upsetting. Mater. Sci. Eng. A 2012;540:115-122.
[12] Zhou H, Ye B, Wang QD, Guo W. Uniform fine microstructure and random texture of Mg–9.8Gd–2.7Y–0.4Zr magnesium alloy processed by repeated-upsetting deformation. Mater Lett 2012;83:175-178.
[13] Zhou H, Wang Q, Chen J, Ye B, Guo W. Microstructure and mechanical properties of extruded Mg–8.5Gd–2.3Y–1.8Ag–0.4Zr alloy. T Nonferr Metal Soc 2012;22:1891-1895.
[14] Guo W, Wang Q, Ye B, Li X, Liu X, Zhou H. Microstructural refinement and homogenization of Mg–SiC nanocomposites by cyclic extrusion compression. Mater. Sci. Eng. A 2012;556:267-270.
[15] 袁竭, 王渠东, 陈长江, 尹冬弟, 叶兵. 挤压铸造Mg-9Gd-1Y-0.5Zr活塞的组织与性能. 特种铸造及有色合金 2012;32:907-911.
[16] Ye B, Matsen MR, Dunand DC. Blended elemental powder densification of Ti-6Al-4V by hot pressing. J Mater Res 2011;26:965-969.
[17] Ye B, Matsen MR, Dunand DC. Enhanced densification of Ti-6Al-4V powders by transformation-mismatch plasticity. Acta Mater 2010;58:3851-3859.
[18] Ye B, Dunand DC. Titanium foams produced by solid-state replication of NaCl powders. Mater. Sci. Eng. A 2010;528:691-697.
[19] Ye B, Majumdar BS, Dutta I. Texture development and strain hysteresis in a NiTi shape-memory alloy during thermal cycling under load. Acta Mater 2009;57:2403-2417.
[20] Ye B, Majumdar BS, Dutta I. Texture memory and strain-texture mapping in a NiTi shape memory alloy. Appl Phys Lett 2007;91:61918.