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《材料导报》期刊社  2018, Vol. 32 Issue (5): 828-835    https://doi.org/10.11896/j.issn.1005-023X.2018.05.020
  材料综述 |
铜铝层状复合材料界面特性及深加工研究进展
刘帅洋1, 王爱琴1, 2, 吕世敬1, 田捍卫1
1 河南科技大学材料学院,洛阳 471023;
2 有色金属共性技术河南省协同创新中心,洛阳 471023
Interfacial Properties and Further Processing of Cu/Al Laminated Composite: a Review
LIU Shuaiyang1, WANG Aiqin1,2, LYU Shijing1, TIAN Hanwei1
1 College of Materials Science and Engineering, Henan University of Science and Technology, Luoyang 471023;
2 Collaborative Innovation Center of Nonferrous Materials of Henan Province, Luoyang 471023
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摘要 铜铝层状复合材料因其良好的综合性能而应用于众多领域,其深加工变形性能关系到复合材料的推广与发展。本文介绍了铜铝层状复合材料深加工性能研究现状,总结了深加工过程中复合材料宏观质量缺陷的成因与解决对策;综述了铜铝层状复合材料的界面特征、形成机理、界面层对铜铝复合板材变形性能的影响;从宏观和微观角度汇总了复合材料界面断裂失效机理;概括了复合材料深加工变形过程中界面结构演变规律;基于复合材料协同变形,提出了复合材料界面结构调控机制。文章还对铜铝层状复合材料深加工发展方向进行了展望。
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刘帅洋
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关键词:  铜铝复合材料  协同变形  界面特性  深加工  界面调控    
Abstract: Because of favorable comprehensive properties, copper/aluminum laminated composites have found wide application in many fields and their deep processing deformation performances are of great importance to the popularization and development of composite materials. This paper introduces the research status of the deep processing properties of copper/aluminum laminated composites, and summarizes the causes and solutions of the macroscopic defect of composites in the process of deep processing. The interfacial characteristics, formation mechanism and effect of interface layer on the deformation properties of Cu/Al composite sheet are reviewed. Simultaneously, the interfacial failure mechanism is analyzed from macroscopic and microscopic perspectives. In addition, the evolution rule of interface structure during the deep process of composite material was summarized and the mechanism of interface structure control of composite materials is proposed, based on the cooperative deformation of composite materials. Finally, the prospect of further development of Cu/Al layered composites is prospected.
Key words:  Cu/Al composite    cooperative deformation    interfacial properties    deep processing    interface control
               出版日期:  2018-03-10      发布日期:  2018-03-10
ZTFLH:  TB331  
基金资助: 国家自然科学基金河南联合基金重点项目(U1604251)
通讯作者:  王爱琴: 通信作者,女,1964年生,教授,主要从事金属基复合材料的研究 E-mail:aiqin_wang888@163.com   
作者简介:  刘帅洋:男,1992年生,硕士研究生,研究方向为金属层状复合材料 E-mail:liusy107@163.com
引用本文:    
刘帅洋, 王爱琴, 吕世敬, 田捍卫. 铜铝层状复合材料界面特性及深加工研究进展[J]. 《材料导报》期刊社, 2018, 32(5): 828-835.
LIU Shuaiyang, WANG Aiqin, LYU Shijing, TIAN Hanwei. Interfacial Properties and Further Processing of Cu/Al Laminated Composite: a Review. Materials Reports, 2018, 32(5): 828-835.
链接本文:  
http://www.mater-rep.com/CN/10.11896/j.issn.1005-023X.2018.05.020  或          http://www.mater-rep.com/CN/Y2018/V32/I5/828
1 Kim I K, Sun I H. Effect of heat treatment on the bending behavior of tri-layered Cu/Al/Cu composite plates[J].Materials & Design,2013,47(9):590.
2 Yang L. Formation sequence of interface intermetallic phases of cold rolling Cu/Al clad metal sheet in annealing process[J].Materials Science Forum,2013,749(749):600.
3 Li X, Zu G, Wang P. Interface strengthening of laminated compo-site produced by asymmetrical roll bonding[J].Materials Science & Engineering A,2013,562(2):96.
4 Zhang Heng, Xie Jingpei, Shang Zhengping, et, al. Bonding interface structure and properties of Cu-Al-Cu compound plate fabricated by cast-rolled process[J].Journal of Henan University of Science and Technology:Natural Science,2015,36(3):1(in Chinese).
张衡,谢敬佩,尚郑平,等.铸轧法制备铜-铝-铜复合板的界面组织与性能[J].河南科技大学学报:自然科学版,2015,36(3):1.
5 Wu Yongfu, Liu Xinhua, Xie Jianxin. Copper cladding aluminum composite materials with rectangle section fabricated by horizontal core-filling continuous casting[J].The Chinese Journal of Nonferrous Metals,2012(9):2500(in Chinese).
吴永福,刘新华,谢建新,等.矩形断面铜包铝复合材料的水平连铸直接复合成形[J].中国有色金属学报,2012(9):2500.
6 Eizadjou M, Talachi A K, Manesh H D, et al. Investigation of structure and mechanical properties of multi-layered Al/Cu compo-site produced by accumulative roll bonding (ARB) process[J].Composites Science & Technology,2008,68(9):2003.
7 Guo Yajie, Liu Guiwu, Jin Haiyun, et al. Investigation on the interfacial structure and phase formation mechanism of the diffusion-bonded Cu/Al laminates[J].Rare Metal Materials and Engineering,2011(s2):215(in Chinese).
郭亚杰,刘桂武,金海云,等.扩散结合Cu/Al叠层复合材料的界面结构与相生成机制[J].稀有金属材料与工程,2011(s2):215.
8 Huang Huagui, Liu Wenwen, Ye Lifen, et al. Mechanism of interface local fusion for Cu/Al cladding strip fabricated in twin-roll cas-ting and bonding process at different temperatures[J].Journal of Harbin Engineering University,2016,37(3):432(in Chinese).
黄华贵,刘文文,叶丽芬,等.Cu/Al双辊异温铸轧复合界面局部熔合机理[J].哈尔滨工程大学学报,2016,37(3):432.
9 Zhang Jianyu, Yao Jinjin, Zeng Xiangyong, et al. Research progress of copper cladding aluminum composites[J].The Chinese Journal of Nonferrous Metals,2014(5):1275(in Chinese).
张建宇,姚金金,曾祥勇,等.铜包铝复合材料研究进展[J].中国有色金属学报,2014(5):1275.
10 Chen C Y, Hwang W S. Effect of annealing on the interfacial structure of aluminum-copper joints[J].Materials Transactions,2007,48(7):1938.
11 Jiang Yanbin, Liu Xinhua, Wang Chunyang, et al. Influence of induction heating continuous annealing on recrystallization and interfacial intermetallic compound of copper-clad aluminum wire[J].Acta Metallurgica Sinica[J].2014,50(4):479(in Chinese).
姜雁斌,刘新华,王春阳,等.感应加热连续退火对铜包铝复合线材再结晶组织和界面金属间化合物的影响[J].金属学报,2014,50(4):479.
12 Heness G, Wuhrer R, Yeung W Y. Interfacial strength development of roll-bonded aluminium/copper metal laminates[J].Materials Science & Engineering A,2008,s 483(1):740.
13 Li Xiaobing, Zu Guoyin, Wang Ping. Effect of annealing temperature on microstructure and mechanical properties of Cu/Al clad sheet fabricated by asymmetrical roll bonding[J].The Chinese Journal of Nonferrous Metals,2013(5):1202(in Chinese).
李小兵,祖国胤,王平.退火温度对异步轧制铜/铝复合板界面组织及力学性能的影响[J].中国有色金属学报,2013(5):1202.
14 Wu Yongfu, Liu Xinhua, Xie Jianxin. Effect of annealing temperature on texture and properties of copper cladding aluminum flat bar fabricated by continuous casting and subsequent rolling technology[J].The Chinese Journal of Nonferrous Metals,2014(1):188(in Chinese).
吴永福,刘新华,谢建新.退火温度对连铸-轧制成形铜包铝复合扁排组织与性能的影响[J].中国有色金属学报,2014(1):188.
15 Mara N A, Beyerlein I J. Review: effect of bimetal interface structure on the mechanical behavior of Cu-Nb fcc-bcc nanolayered composites[J].Journal of Materials Science,2014,49(19):6497.
16 Motevalli P D, Eghbali B. Microstructure and mechanical properties of Tri-metal Al/Ti/Mg laminated composite processed by accumulative roll bonding[J].Materials Science & Engineering A,2015,628(3):135.
17 Wang Yansong, Li Wenya, Yang Xiawei, et al. Research status on interface bonding mechanisms and strength of cold pressure welding[J].Journal of Materials Engineering,2016,44(4):119(in Chinese).
王艳松,李文亚,杨夏炜,等.冷压焊界面结合机理与结合强度研究现状[J].材料工程,2016,44(4):119.
18 Wu Yongfu, Liu Xinhua, Xie Jianxin. Interface of copper cladding aluminum composite materials with rectangle section fabricated by horizontal core-filling continuous casting and its evolvement in rolling process[J].The Chinese Journal of Nonferrous Metals,2013(1):191(in Chinese).
吴永福,刘新华,谢建新.连铸直接成形矩形断面铜包铝复合材料界面及其在轧制中的变化[J].中国有色金属学报,2013(1):191.
19 刘新华,刘雪峰,谢建新.一种铜包铝复合扁线及其制备方法:CN 101236798 A[P].2008.
20 Yu H, Lu C, Kiet T A, et al. Fabrication of ultra-thin nanostructured bimetallic foils by accumulative roll bonding and asymmetric rolling[J].Scientific Reports,2013,3(32):2373.
21 Huang Zengyang. The preparation and interface behaviors of Cu/Al/Cu composite Foil[D].Shenyang:Northeastern University,2013(in Chinese).
黄增阳.铜/铝/铜复合箔的制备及其界面行为[D].沈阳:东北大学,2013.
22 Yu Yang, Song Hongwu, Chen Yan, et al. Investigation on fabrication and mechanical property of ultra-thin Cu/A1 clad strip used for coax[J].Material Scientific & Technology,2014,22(5):13(in Chinese).
于洋,宋鸿武,陈岩,等.超薄铜铝复合电缆带的制备及其力学性能研究[J].材料科学与工艺,2014,22(5):13.
23 Sun Tiekai, Zheng Changmin. Calculation of minimum rolling thickness for bimetals[J].Iron and Steel,1997(5):51(in Chinese).
孙铁铠,郑长民.双金属复合板最小可轧厚度的计算[J].钢铁,1997(5):51.
24 中国国家标准TC管理委员会.GB/T32468-2015铜铝复合板带[S].
25 Huang Hongjun, Zhang Zewei, Wang Shusheng, et al. Roll-cladding technology for copper-aluminum thin sheet[J].Journal of Shenyang University of Technology,2009(5):531(in Chinese).
黄宏军,张泽伟,王书生,等.铜铝薄板轧制复合工艺[J].沈阳工业大学学报,2009(5):531.
26 Wang Chunyang, Jiang Yanbin, Xie Jianxin, et al. Thickness variation of aluminum layer-steel layer of embedded aluminum-steel composite strip during cold roll bonding[J].The Chinese Journal of Nonferrous Metals,2017,27(4):766(in Chinese).
王春阳,姜雁斌,谢建新,等.嵌入式铝/钢带材轧制复合铝层和钢层厚度的变化规律[J].中国有色金属学报,2017,27(4):766.
27 Yao Chengjun. Coupling of thickness of bimetallic strip AlSn20Cu/steel by composite rolling[J].Research on Iron & Steel,2003,31(3):24(in Chinese).
姚成君.AlSn20Cu/Steel双金属板(带)复合轧制过程的厚度匹配[J].钢铁研究,2003,31(3):24.
28 Tian Dewang. Study on deformation behavior and bonding strength of bimetal composite in cold rolling[D].Wuhan:Wuhan University of Science and Technology,2006(in Chinese).
田德旺.双金属复合材料冷轧变形行为及结合强度的研究[D].武汉:武汉科技大学,2006.
29 Lin Dachao, Shi Qingnan. Deformation relationships of asymmetrical rolling high quality cladding bimetal sheet[J].Journal of Kunming University Science and Technology,1997(1):78(in Chinese).
林大超,史庆南.精密复合带材异步轧制工艺中的变形关系[J].昆明理工大学学报(自然科学版),1997(1):78.
30 Ma Jiangze, Zhou Cunlong, Zhang Xiaocheng. The effect of diffe-rent reduction and speed rate on the flatness of asymmetrical rolling clad plate[J].Heavy Machinery,2016(3):20(in Chinese).
马江泽,周存龙,张校诚.压下率和异速比对异步轧制复合板平直度影响[J].重型机械,2016(3):20.
31 Zhang Chao, Zang Yong, Guan Ben, et al. Bending and springback analysis of bimetal composite plates during leveling[J].Journal of University of Science and Technology Beijing,2016,38(9):1317(in Chinese).
张超,臧勇,管奔,等.双金属复合板矫直过程的弯曲及弹复解析[J].北京科技大学学报,2016,38(9):1317.
32 Rabkin D M, Ryabov V R, Lozovskaya A V, et al. Preparation and properties of copper-aluminum intermetallic compounds[J].Powder Metallurgy and Metal Ceramics,1970,9(8):695.
33 Niu Yongsheng, Si Yunsen, Zhu Peixian, et al. Rapid preparation of Al-Cu composite material by low pressure casting-rolling[J].Mate-rials Review A:Review Papers,2016,30(11):104(in Chinese).
牛永胜,司云森,竺培显,等.低压铸造-轧制法快速制备Al-Cu复合材料[J].材料导报:综述篇,2016,30(11):104.
34 Heness G, Wuhrer R, Yeung W Y. Interfacial strength development of roll-bonded aluminium/copper metal laminates[J].Materials Science & Engineering A,2008,483-484:740.
35 Abbasi M, Taheri A K, Salehi M T. Growth rate of intermetallic compounds in Al/Cu bimetal produced by cold roll welding process[J].Journal of Alloys & Compounds,2001,319(1-2):233
36 Chen C Y, Chen H L, Hwang W S. Influence of interfacial structure development on the fracture mechanism and bond strength of aluminum/copper bimetal plate[J].Materials Transactions,2006,47(4):1232
37 Lee K S, Lee S, Lee J S, et al. Evaluation of intermediate phases formed on the bonding interface of hot pressed Cu/Al clad materials[J].Metals and Materials International,2016,22(5):849.
38 Guo Y, Qiao G, Jian W, et al. Microstructure and tensile behavior of Cu-Al multi-layered composites prepared by plasma activated sintering[J].Materials Science & Engineering A,2010,527(20):5234.
39 Kouters M H M, Gubbels G H M, Ferreira O D S. Characterization of intermetallic compounds in Cu-Al ball bonds: Mechanical pro-perties, interface delamination and thermal conductivity[J].Microelectronics Reliability,2013,53(8):1068.
40 Xu H, Liu C, Silberschmidt V V, et al. Behavior of aluminum oxide, intermetallics and voids in Cu-Al wire bonds[J].Acta Mate-rialia,2011,59(14):5661.
41 Xu Zhiwu, Ma Zhipeng, Yan Jiuchun, et al. Strain field and fracture behavior of Ti/Al dissimilar alloy joint under in situ tensile test[J].Acta Metallurgica Sinica,2016,52(11):1403(in Chinese).
许志武,马志鹏,闫久春,等.Ti/Al异种合金接头原位拉伸应变场及断裂行为的研究[J].金属学报,2016,52(11):1403.
42 Liu Jian, Meng Fanjun, Yin Fengliang, et al. Progress in research on bonding interface between thermal spraying coating and substrate[J]. Journal of Materials Engineering,2017,45(1):101(in Chinese).
柳建,孟凡军,殷凤良,等.热喷涂涂层与基体结合界面研究进展[J].材料工程,2017,45(1):101.
43 Kim H G, Sang M K, Lee J Y, et al. Microstructural evaluation of interfacial intermetallic compounds in Cu wire bonding with Al and Au pads[J].Acta Materialia,2014,64(2):356.
44 Liu Pei, Wang Aiqin, Hao Shiming, et al. The interfacial condition of SiCP/Al composite[J].Journal of Chinese Electron Microscopy Society,2014(4):306(in Chinese).
柳培,王爱琴,郝世明,等.SiCp/2024Al基复合材料的界面行为[J].电子显微学报,2014(4):306.
45 Zhao Jialei, Jie Jinchuan, Chen Fei, et al. Effect of immersion Ni plating on interface microstructure and mechanical properties of Al/Cu bimetal[J].Transactions of Nonferrous Metals Society of China,2014,24(6):1659.
46 刘平,王渠东,刘腾.一种铜铝异种金属的固液连接方法,CN104384480A[P].2015.
47 王渠东,刘腾,刘国平.固态铜材固液复合及轧制组合制备双金属复合材料的方法,CN105598420A[P].2016.
48 Liu T, Wang Q, Sui Y, et al. An investigation into interface formation and mechanical properties of aluminum-copper bimetal by squeeze casting[J].Materials & Design,2016,89:1137.
49 Liu Ping, Liu Teng, Wang Qudong. Research progress on liquid-solid bimetal compound casting[J].Materials Review A:Review Papers,2014,28(1):26(in Chinese).
刘平,刘腾,王渠东.固液双金属复合铸造研究进展[J].材料导报:综述篇,2014,28(1):26.
50 Chen Guohong, Zhang Jian, Wang Ruomin et al. Studies on electroless plating Ni-P alloy film on Al substrate and electrical property of Al/Ni-P/Cu composite[J].Journal of Functional Materials,2016,47(B06):7(in Chinese).
陈国宏,张健,王若民,等.Al表面化学镀Ni-P合金及Al/Ni-P/Cu复合材料电性能的研究[J].功能材料,2016,47(B06):7.
51 Chang Dongxu, Wang Ping, Gong Xiaoyu, et al. Effect of Si on the composite interface microstructure and property of Cu/Al cold-rol-ling cladding[J].Rare Metal Materials and Engineering,2015,44(9):2216(in Chinese).
常东旭,王平,龚潇于,等.Si对Cu/Al冷轧复合界面组织与力学性能的影响[J].稀有金属材料与工程,2015,44(9):2216.
52 Yang Xue. Research on the rule of Cu/Al surface morphology based on diffused control impact on the properties of composite plate[D].Shenyang:Northeastern University,2014(in Chinese).
杨雪.基于扩散控制的铜/铝界面形态对复合板性能影响规律的研究[D].沈阳:东北大学,2014.
53 Xie Peipei. Study on control of interface shape in copper-aluminum composite strip[D].Shenyang:Northeastern University,2011(in Chinese).
谢珮珮.铜铝复合带界面形态控制研究[D].沈阳:东北大学,2011.
54 Xu B, Tong W P, Liu C Z, et al. Effect of high magnetic field on growth behavior of compound layers during reactive diffusion between solid Cu and liquid Al[J].Journal of Materials Science & Technology,2011,27(9):856.
55 Guo Zhiyuan. Effect of oscillation on flow field and temperature field during the twin-roll strip casting process[D].Qinhuangdao:Yanshan University,2016(in Chinese).
郭志远.双辊薄带振动铸轧数值模拟及实验研究[D].秦皇岛:燕山大学,2016.
56 Lei Zhenyao. The experiment study on the influence mechanism of oscillating technology to solidification structure in trc-strip[D].Qinhuangdao:Yanshan University,2015(in Chinese).
雷振尧.双辊薄带振动铸轧振动工艺对凝固组织影响机理实验研究[D].秦皇岛:燕山大学,2015.
57 Zhao Hongjin, Wang Da, Qin Jing, et al. Research progress on bonding mechanism and interface reaction of Cu/Al laminated composite[J].Hot Working Technology,2011,40(10):84(in Chinese).
赵鸿金,王达,秦镜,等.铜/铝层状复合材料结合机理与界面反应研究进展[J].热加工工艺,2011,40(10):84.
58 Mehr V Y, Toroghinejad M R, Rezaeian A. The effects of oxide film and annealing treatment on the bond strength of Al-Cu strips in cold roll bonding process[J].Materials & Design,2014,53(1):174.
59 Hosseini M, Manesh H D. Bond strength optimization of Ti/Cu/Ti clad composites produced by roll-bonding[J].Materials & Design,2015,81:122.
60 Le H R, Sutcliffe M, Wang P Z, et al. Surface oxide fracture in cold aluminium rolling[J].Acta Materialia,2004,52(4):911.
61 Lu Wangke, Xie Jingpei, Wang Aiqin, et al. Bonding interface structure and properties of copper and aluminum composite plate[J].Special Casting & Nonferrous Alloys 2014,34(2):198(in Chinese).
路王珂,谢敬佩,王爱琴,等.铜铝复合板界面组织和性能研究[J].特种铸造及有色合金,2014,34(2):198.
62 Lu Wangke, Xie Jingpei, Wang Aiqin, et al. Effect of annealing temperature on interfacial microstructure and mechanical properties of Cu/Al roll-casted composite plate[J].Materials for Mechanical Engineering,2014,38(3):14(in Chinese).
路王珂,谢敬佩,王爱琴,等.退火温度对铜铝铸轧复合板界面组织和力学性能的影响[J].机械工程材料,2014,38(3):14.
63 Liu Xinhua, Fu Xintong, Fu Huadong, et al. Numerical simulation analysis of effects of processing parameters on forming process of vertical continuous core-filling casting for copper clad aluminum billets with large section[J].The Chinese Journal of Nonferrous Metals,2017,27(3):514(in Chinese).
刘新华,付新彤,付华栋,等.大断面铜包铝棒坯立式连铸成形工艺参数对连铸复合过程影响的数值模拟[J].中国有色金属学报,2017,27(3):514.
64 Wu Jianhua, Zhou Jixue, Tang Shouqiu, et al. Effects of cooling rate on microstructure and tensile properties of as-cast A356 alloy[J].Journal of Functional Materials,2016,47(B12):63(in Chinese).
吴建华,周吉学,唐守秋,等.冷却速率对铸态A356铝合金微观组织和拉伸性能的影响[J].功能材料,2016,47(B12):63.
65 Chen Yuanfang, Guan Guohua, Jiang Huade, et al. Filling velocity studies of large low-pressure casting aluminum engine casing[J].Journal of Chongqing University of Technology,2015,29(1):23(in Chinese).
陈元芳,关国华,江华德,等.大型铝合金发动机壳体低压铸造充型速度研究[J].重庆理工大学学报,2015,29(1):23.
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