主要论文
编辑: 发表时间:[2016-09-22] 阅读:1391次
| |||||
[9] Liu X, Zhao X, Yang X, et al. Hot Compression Deformation Behavior of as-ECAPed CP-Ti at Room Temperature with 120° Die[J]. Rare Metal Materials & Engineering, 2012, 41(4):667-671. [10] You-ping, Xiu-lan, WANG, et al. Microstructure and Impact Wear Resistance of TiN Reinforced High Manganese Steel Matrix[J]. 钢铁研究学报(英文版), 2012, 19(7):60-65. [11] Wang K, Zhou L, Wu J, et al. Research of Submerged Friction Stir Welded AZ31B Magnesium Alloy[J]. Rare Metal Materials & Engineering, 2012, 41(6):1111-1115. [12] Wang K S, Jia-Lei W U, Wang W, et al. Underwater friction stir welding of ultrafine grained 2017 aluminum alloy[J]. Journal of Central South University, 2012, 19(8):2081-2085. [13] Han Y, Zou D, Chen Z, et al. Investigation on hot deformation behavior of 00Cr23Ni4N duplex stainless steel under medium–high strain rates[J]. Materials Characterization, 2011, 62(2):198-203. [14] Cai Jun, Wang Kuaishe, Miao Chengpeng, Li Wenbing, Wang Wen and Yang Jie. Constitutive analysis to predict high-temperature flow behavior of BFe10-1-2 cupronickel alloy in consideration of strain. Materials and Design, 2015, 65: 272-279 [15]Cai Jun, Wang Kuaishe, Zhai Peng, Li Fuguo and Yang Jie. A Modified Johnson-Cook Constitutive Equation to Predict Hot Deformation Behavior of Ti-6Al-4V Alloy. Journal of Materials Engineering and Performance, 2015, 24(1): 32-44 [16]Cai Jun, Lei Ying, Wang Kuaishe, Zhang Xiaolu, Miao Chengpeng and Li Wenbing. A Comparative Investigation on the Capability of Modified Zerilli-Armstrong and Arrhenius-Type Constitutive Models to Describe Flow Behavior of BFe10-1-2 Cupronickel Alloy at Elevated Temperature. Journal of Materials Engineering and Performance, 2016, 25(5): 1952-1963
|
|||||
|
成果展示