论文

辐照损伤合金化制备Mo/Ag层状复合材料

  • 黄远 孔德月 何芳 王玉林 刘文西
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  • 天津大学材料科学与工程学院, 天津 300072
黄远, 男, 1970年生, 副教授

收稿日期: 2011-12-29

  修回日期: 2012-08-15

  网络出版日期: 2012-10-11

基金资助

国家自然科学基金项目51171128和天津市科技支撑计划重点项目11ZCKFGX03800资助

PREPARATION OF Mo/Ag LAMINAR COMPOSITES BY USING IRRADIATION DAMAGE ALLOYING METHOD

  • HUANG Yuan KONG Deyue HE Fang WANG Yulin LIU Wenxi
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  • School of Materials Science and Engineering, Tianjin University, Tianjin 300072

Received date: 2011-12-29

  Revised date: 2012-08-15

  Online published: 2012-10-11

Supported by

Supported by National Natural Science Foundation of China (No.51171128) and Key Technologies R&D Program of Tianjin (No.11ZCKFGX03800)

摘要

本工作提出一种新的辐照损伤合金化方法, 首先采用离子注入技术将离子束注入金属, 使其产生包括空位在内的辐照损伤, 然后利用辐照损伤来诱发互不固溶金属之间的扩散和合金化, 从而实现金属界面之间的冶金结合. 扩散层中形成的非晶合金相是形成冶金结合的关键. 基于该辐照损伤合金化机制, 制备出了高性能的空间飞行器太阳能电池阵互连片用Mo/Ag层状复合材料,这种材料与空间GaAs电池片的单点电阻点焊拉伸强度最高达到了150 MPa, 平均为130 MPa, 超过了国家军用标准和航天用户提出的指标要求.

本文引用格式

黄远 孔德月 何芳 王玉林 刘文西 . 辐照损伤合金化制备Mo/Ag层状复合材料[J]. 金属学报, 2012 , 48(10) : 1253 -1259 . DOI: 10.3724/SP.J.1037.2011.00811

Abstract

The preparation of laminar metal matrix composites for immiscible alloy systems was difficult due to the positive formation heat and diffusion difficulty between each other, resulting in no metallurgy combination forming on interfaces. Aiming at this situation, a new irradiation damage alloying method for immiscible and not reacting alloy systems was presented in this work, through irradiation damages were produced by an ion implantation technology in the matrix metal first, and then the metal in the surface layer diffused into the matrix metal through the irradiation damages to form metallurgy combination with the metal. The key of this kind of metallurgy combination is to form amorphous alloy phase in the diffusion layer. By alloying the high–performance Mo/Ag laminar metal matrix composites used in spacecraft were prepared, whose maxium resistance spot welding joint tensile strength reaches 150 MPa, the average 130 MPa. The properties of thees composites exceed the national military standards and the technical requirements specified by astronic users.

参考文献

[1] de Rooij A. In: ESTEC ed., Proc Hubble Space Telescope Solar–Array Workshop. Noordwijk: ESA WPP–77, 1995: 341

[2] Yu C T, Cui J Z, Wang L. Metal Matrix Composite. Beijing: Metallurgical Industry Press, 1995: 9

(于春田, 崔建忠, 王 磊. 金属基复合材料. 北京: 冶金工业出版社, 1995: 9)

[3] Yu Z M, Wu C J, Xie J X, Wu Y. Foundry Technol, 2004; 25: 399

(于治民, 吴春京, 谢建新, 吴渊. 铸造技术, 2004; 25: 399)

[4] Zhong P Q. China Molybdenum Ind, 2000; 24: 15

(钟培全.中国钼业, 2000; 24: 15)

[5] Peng D S, Liu L F, Zhu X X. Mater Rev, 2000; 14: 23

(彭大暑, 刘浪飞, 朱旭霞.材料导报, 2000; 14: 23)

[6] Yu C Q, Xu Y H, Zhang Y, Li Z C, Chen Q B. Electr Mater, 2008; (2): 15

(于朝清, 徐永红, 章 应, 李仲才, 陈前兵.电工材料, 2008; (2): 15)

[7] Zhang Z J, Jin O, Liu B X. Phy Rev, 1995; 51B: 8076 [8] Liu B X, Chen Y G. Physics, 1996; 25: 641

(柳百新, 陈益刚. 物理, 1996; 25: 641)

[9] Liu B X, Chen Y G, Jin O. Chin J Mater Res, 1997; 11: 561

(柳百新, 陈益刚, 金 瓯. 材料研究学报, 1997; 11: 561)

[10] Yu J N. Material Radiation Effect. Beijing: Chemical Industry Press, 2007: 4

(郁金南. 材料辐照效应. 北京: 化学工业出版社, 2007: 4)

[11] Zhang G H, Zhong S Q. Ion Implantation Technology. Beijing: Mechanical Industry Press, 1982: 253

(张光华, 钟士谦.离子注入技术.北京: 机械工业出版社, 1982: 253)

[12] Hu C. Surface Treatment Technology Handbook. Beijing: Beijing Industry University Press, 1997: 646

(胡传炘. 表面处理技术手册.北京: 北京工业大学出版社, 1997: 646)

[13] Kong D Y. Master Thesis, Tianjin University, 2011

(孔德月. 天津大学硕士学位论文, 2011)

[14] Xu Z. Plasma Surface Metallurgy. Beijing: Science Press, 2008: 93

(徐重. 等离子表面冶金学. 北京: 科学出版社, 2008: 93)

[15] Yu Z S, Chen N. Acta Metall Sin, 1992; 28: 104

(余宗森, 陈宁. 金属学报, 1992; 28: 104)

[16] Yu Z S, Chen N. Acta Metall Sin, 1994; 30: 7

(余宗森, 陈宁. 金属学报, 1994; 30: 7)

[17] Hao X P, Wang B Y, Yu R S, Wei L. Acta Phys Sin, 2007; 56: 6543

(郝小鹏, 王宝义, 于润升, 魏龙. 物理学报, 2007; 56: 6543)

[18] Wu S L, Chen Y Q, Wu Y C, Wang S J, Wen X Y, Zhai T G. Acta Phys Sin, 2006; 55: 6129

(吴世亮, 陈叶清, 吴奕初, 王少阶, 温熙宇, 翟同广. 物理学报, 2006; 55: 6129)

[19] Liu B X. Prog Phys, 1993; 13: 38

(柳百新. 物理学进展, 1993; 13: 38)

[20] Zhang Z J, Liu B X. J Appl Phys, 1994; 75: 4948

[21] Zhang Z J, Liu B X. J Appl Phys, 1994; 76: 3351

[22] Liu B X, Zhang Z J. Phys Rev, 1994; 49B: 12519

[23] Pan F, Liu B X. Chin J Mater Res, 1988; 12: 311

(潘峰, 柳百新. 材料研究学报, 1998; 12: 311)

[24] Lopez J M, Alonso J A, Gallego L J. Phys Rev, 1987; 36B: 3716

[25] Guan Q F, Cheng D Q, Chen K M, Pan L. Nucl Techniq, 2008; 31: 519

(关庆丰, 程笃庆, 陈康敏, 潘励. 核技术, 2008; 31: 519)

[26] Zou H, Jing H Y, Wang Z P, Guan Q F. Acta Phys Sin, 2010; 59: 6384

(邹慧, 荆洪阳, 王志平, 关庆丰. 物理学报, 2010; 59: 6384)

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