姓名:周清 | 性别:男 | 职务: | |
职称:副教授 | 博导/硕导:硕导 | 办公室:15-445 | |
研究领域:轻量化夹层结构的制造和塑性变形;高性能医用植入钛的制备和应用;塑性变形机理。 | |||
电话:025-84892570 | Email:anzhouqing@nuaa.edu.cn |
个人简介:
周清,男,1970年出生,1991年和1997年分别获得大连理工大学金属材料与热处理专业学士和硕士学位。1997-2001年日本文部省国费留学生,2001年获得日本长冈技术科学大学博士(工学)学位,20022005年日本茨城大学工学部机械工学部研究员,与伊藤吾朗教授合作从事应用于医用生物材料的beta钛合金的微观组织改进和高温变形机理的研究,2005年8月开始回国工作。从事于塑性加工的教学和科研工作。对钛合金热变形及其微观组织,高温变形的尺度效应等领域有较深入的研究。发表论文近30篇,其中SCI论文15篇。教育部学位与研究生教育评估专家。
学术成果:
[1] 邓竹君,周清,陈明和,陈文杰:应用于医学的ECAP处理Ti及Ti合金的研究现状,材料导报, 25(2),2011,116-120.
[2] 张方哲,周清,童国权,陈明和,陶克梅:生物医用Ti29Nb13Ta5Zr合金的超塑性行为,稀有金属材料与工程, 40(2),2011,231-235.
[3] 陈文杰,周清,邓竹君,张方哲:基于Normalized C&L准则的ECAP裂纹萌生趋势的数值模拟,锻压技术,35(5),2010,159-163.
[4] 张方哲,周清,陈文杰,郑志豪:Ti-15-3 在beta相区的两段超塑性行为研究,热加工工艺, 39(2), 2010,17-20.
[5] 朱浩,周清:变形条件对AZ31镁合金塑性的影响,机械工程材料, 33(12),2009, 39-42.
[6] 周清,Itoh Goroh, 孟祥康:高温变形尺度效应及其微观结构,南京大学学报,45(2), 2009,198-202.
[7] 周清, 伊藤吾朗:晶粒尺寸和膜厚度对介观尺度铝箔蠕变变形的影响,金属学报, 44(3), 2008, 336-340.
[8] Qing Zhou, Goroh Itoh and Mitsuo Niinomi: Mechanical properties and high temperature deformation of beta titanium alloys, Mater Sci Forum, 546-549, 2007, 1379-1382.
[9] Tsing (Qing) Zhou, Goroh Itoh, Yoshinobu Motohashi and Mitsuo Niinomi: Microstructural modification in a beta titanium alloy for implant applications, Mater Trans, 47(1), 2006, 90-95.
[10] ZHOU Qing, G. Itoh, Y. Motohash: Tensile properties of AZ31 sheet/bar and effects of texture, Tran Nonferrous Met Soc China 16, 2006, s1741-s1745.
[11] Goroh Itoh, Hisashi Hasegawa, Tsing (Qing) Zhou, Yoshinobu Motohashi and Mitsuo Niinomi: Microstructure change of beta type titanium alloy by intense plastic deformation, Mater Sci Forum, 503-504, 2006, 705-710.
[12] Qing Zhou, K. Tanaka and G. Itoh: Deformation of aluminum thin foils under uniaxial tensile stress at elevated temperatures, J Mater Sci Letters, 21(12), 2002, 915 -916.
[13] Q. Zhou, Z.Y. Ma, J. Zhao, J. Bi, S.J. Zhu, F.G. Wang: Creep Deformation and Fracture of Dispersoids and SiC Particulates Reinforced Al Composites, Acta Metall Sinica 34(1),1998,107-112.
[14] Q. Zhou and G. Itoh: Creep behavior of aluminum alloy foils for microelectronic circuits, Key Eng Mater, 171-174, (2000), 633-638.
[15] S.J. Zhu, L.M. Peng, Q. Zhou, Z.Y. Ma, K. Kuchařová and J. Čadek: Creep Behavior of Aluminum Strengthened by Fine Aluminum Carbide Particles and Reinforced by Silicon Carbide Particulates-DS Al–SiC:Al4C3 Composites, Mater Sci Eng, A282(4), 2000, 273–284.
[16] Q. Zhou, G. Itoh and T. Yamashita: Creep mechanism of aluminum alloy thin foils, Thin Solid Films, 375(1-2), 2000, 104-108.
[17] Q. Zhou, S. J. Zhu, J. Zhao, Z. Y. Ma and J. Bi: Creep deformation behavior of SiC particulate-reinforced Al–C–O composite, J Mater Sci, 33(13), 1998, 3433-3436.
[18] Q. Zhou, G. Itoh and T. Yamashita: Further study on the effects of specimen thickness and grain size on the creep behavior of aluminum alloy foils, Mater. Trans. JIM, 40(5), 1999, 443-446.
承担项目:
[1] 背压ECAP处理纳米晶医用植入纯钛及其性能优化,江苏省自然科学基金,项目编号:BK2011736, 2011~2014