|
|
Research progress of oxide dispersion strengthening copper alloys |
WANG Weiyang1,2, XIAO Zhu2, LEI Qian1, ZHANG Xiukuang1, LI Zhou1,2 |
1. State Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, China; 2. School of Materials Science and Engineering, Central South University, Changsha 410083, China |
|
|
Abstract As one of advanced Cu-based alloys, oxide particle-enhanced dispersion-strengthened copper alloys are widely used in rail transit, national defense industry and nuclear reactors. In this paper, copper alloy composites reinforced with Al2O3, Y2O3 and ZrO2 oxide particles are reviewed, and their fabriaction, microstructure and physical properties are summarized. The relative problems existing in development and application are given, and the development trend is analyzed and forecasted.
|
Received: 09 August 2021
Published: 22 December 2021
|
|
|
|
|
[1] COOLIDGE W.Ductile tungsten[J]. Transactions of the American Institute of Electrical Engineers, 1910, 29(2): 961-965. [2] 孙向阳. 碳化钛颗粒增强锰白铜基复合材料的制备与性能研究[D]. 西安: 长安大学, 2008. SUN Xiangyang.Study on the preparation and properties of TiC particulates reinforced Cu-Ni-Mn matrix composites[D]. Xi’an: Chang’an University, 2008. [3] PARK J, OH S, JUNG C, et al.Al2O3-dispersed Cu prepared by the combustion synthesized powder[J]. Journal of Materials Science Letters, 1999, 18(1): 67-70. [4] SRIVATSAN T S, TROXELL J D.Effect of niobium filaments on mechanical response and fracture characteristics of dispersion strengthened copper alloy and copper-niobium microcomposite[J]. Materials Science and Engineering A, 1999, 264(1): 60-73. [5] 张阳琳, 罗自贵, 胡晓明, 等. Al2O3含量对放电等离子烧结Al2O3/Cu复合材料组织与性能的影响[J]. 粉末冶金材料科学与工程, 2021, 26(1): 9-14. ZHANG Yanglin, LUO Zigui, HU Xiaoming, et al.Effects of Al2O3 content on microstructure and properties of Al2O3/Cu composite materials prepared by spark plasma sintering[J]. Materials Science and Engineering of Powder Metallurgy, 2021, 26(1): 9-14. [6] AGHAMIRI S M S, UKAI S, OONO N, et al. Recrystallization of cold rolled oxide dispersion strengthened copper during room temperature annealing[J]. Journal of Alloys and Compounds, 2019, 798: 187-193. [7] DING J, ZHAO N, SHI C, et al.In situ formation of Cu-ZrO2 composites by chemical routes[J]. Journal of Alloys and Compounds, 2006, 425(1/2): 390-394. [8] 李政舟, 刘如铁, 林雪杨, 等. SiO2/ZrO2复合陶瓷组元对铜基摩擦材料摩擦磨损性能的影响[J]. 粉末冶金材料科学与工程, 2021, 26(2): 108-116. LI Zhengzhou, LIU Rutie, LIN Xueyang, et al.Effects of SiO2/ZrO2 composite ceramic components on friction and wear properties of copper-based friction materials[J]. Materials Science and Engineering of Powder Metallurgy, 2021, 26(2): 108-116. [9] WANG X, LI J, ZHANG Y, et al.Improvement of interfacial bonding and mechanical properties of Cu-Al2O3 composite by Cr-nanoparticle-induced interfacial modification[J]. Journal of Alloys and Compounds, 2017, 695: 2124-2130. [10] SHEN K, WANG M P, LI S M.Study on the properties and microstructure of dispersion strengthened copper alloy deformed at high temperatures[J]. Journal of Alloys and Compounds, 2009, 479(1/2): 401-408. [11] 柳秉毅, 陆文龙, 沈智荣, 等. 粉末冶金制备Al2O3颗粒增强铜基复合材料的耐蚀性[J]. 特种铸造及有色合金, 2016, 36(2): 204-207. LIU Bingyi, LU Wenlong, SHEN Zhirong, et al.Corrosion resistance of Al2O3/Cu composites prepared by powder metallurgy[J]. Special Casting & Nonferrous Alloys, 2016, 36(2): 204-207. [12] 黄胤杰, 骆登高, 李周, 等. 不同处理状态下弥散强化铜合金的力学行为[J]. 中国有色金属学报, 2019, 29(1): 35-43. HUANG Yinjie, LUO Denggao, LI Zhou, et al.Mechanical behavior of dispersion strengthened copper alloy under different treatment states[J]. The Chinese Journal of Nonferrous Metals, 2019, 29(1): 35-43. [13] 李周, 肖柱, 姜雁斌, 等. 高强导电铜合金的成分设计、相变与制备[J]. 中国有色金属学报, 2019, 29(9): 2009-2049. LI Zhou, XIAO Zhu, JIANG Yanbin, et al.Composition design, phase transformation and preparation of high strength conductive copper alloy[J]. The Chinese Journal of Nonferrous Metals, 2019, 29(9): 2009-2049. [14] 李玉娟, 任凤章, 王晓伟, 等. 不同Al含量Cu-Al合金内氧化后的组织对比[J]. 材料热处理学报, 2014, 35(9): 29-32. LI Yujuan, REN Fengzhang, WANG Xiaowei, et al.Comparative analysis of internal oxidation microstructure of Cu-Al alloy with different Al content[J]. Transactions of Materials and Heat Treatment, 2014, 35(9): 29-32. [15] REN F, ZHI A, ZHANG D, et al.Preparation of Cu-Al2O3 bulk nano-composites by combining Cu-Al alloy sheets internal oxidation with hot extrusion[J]. Journal of Alloys and Compounds, 2015, 633: 323-328. [16] ALBERTO L A, IGNACIO R R, RUBEN V R, et al.Synthesis of copper-alumina composites by mechanical milling: An analysis[J]. Materials and Manufacturing Processes, 2013, 2(28): 157-162. [17] ZAWRAH M F, ZAYED H A, ESSAWY R A, et al.Preparation by mechanical alloying, characterization and sintering of Cu-20wt.%Al2O3 nanocomposites[J]. Materials & Design, 2013, 46: 485-490. [18] LU Z L, WANG Z C, LUO L M, et al.Electroless plating of copper on Al2O3 and its heat treatment behaviour[J]. Surface Engineering: Electrodeposition, 2015, 31(3): 240-244. [19] KORAĆ M, KAMBEROVIĆ Z, ANĐIĆ Z, et al. Advances in thermochemical synthesis and characterization of the prepared copper/alumina nanocomposites[J]. Metals, 2020, 10(6): 719-725. [20] WANG X, WANG Y, SU Y, et al.Synergetic strengthening effects on copper matrix induced by Al2O3 particle revealed from micro-scale mechanical deformation and microstructure evolutions[J]. Ceramics International, 2019, 45(12): 14889-14895. [21] 张雪辉, 李晓闲, 刘位江, 等. 冷加工变形量对Al2O3弥散强化铜合金组织与性能的影响[J]. 中国有色金属学报, 2018, 28(4): 705-711. ZHANG Xuehui, LI Xiaoxian, LIU Weijiang, et al.Effect of cold deformation on microstructures and properties of Al2O3- dispersion strengthened copper[J]. The Chinese Journal of Nonferrous Metals, 2018, 28(4): 705-711. [22] GUO M X, WANG M P, CAO L F, et al.Work softening characterization of alumina dispersion strengthened copper alloys[J]. Materials Characterization, 2007, 58(10): 928-935. [23] LI C, ZENG W, XIE Y, et al.Annealing hardening and softening of an ultrafine grained Cu-4.5vol.%Al2O3 nanocomposite[J]. Materials Science and Engineering A, 2020, 778: 139126. [24] 程建奕, 汪明朴, 李周, 等. 纳米Al2O3粒子弥散强化铜合金冷加工及退火行为[J]. 稀有金属材料与工程, 2004, 33(11): 1178-1181. CHENG Jianyi, WANG Mingpu, LI Zhou, et al.Cold drawing and annealing behavior of nano-sized Al2O3 dispersion strengthened copper[J]. Rare Metal Materials and Engineering, 2004, 33(11): 1178-1181. [25] AGHAMIRI S M S, OONO N, UKAI S, et al. Brass-texture induced grain structure evolution in room temperature rolled ODS copper[J]. Materials Science and Engineering A, 2019, 749: 118-128. [26] KIM S, LEE D N.Recrystallization of alumina dispersion strengthened copper strips[J]. Materials Science and Engineering A, 2001, 313(1): 24-33. [27] UKAI S.Oxide dispersion strengthened steels[J]. Comprehensive Nuclear Materials, 2012, 4: 241-271. [28] CHEN F, YAN Z, WU X, et al.Microstructures and properties of Cu-10Sn oil bearings reinforced by Al2O3 nanoparticles[J]. Advanced Powder Technology, 2021, 32(3): 710-717. [29] MA B, HISHINUMA Y, NOTO H, et al.Development of Y2O3 dispersion strengthened Cu alloy using Cu6Y and Cu2O addition through the MA-HIP process[J]. Fusion Engineering and Design, 2020, 161: 112045. [30] MA B, HISHINUMA Y, NOTO H, et al.Influence of Cu-Y compound content on the microstructure of Cu-Y2O3 dispersion strengthened alloys synthesized by MA and HIP process[J]. Plasma and Fusion Research, 2021, 16: 2405053. [31] AVETTAND-FÈNOËL M N, SIMAR A, SHABADI R, et al. Characterization of oxide dispersion strengthened copper based materials developed by friction stir processing[J]. Materials & Design, 2014, 60: 343-357. [32] JOSHI P B, REHANI B, NAIK P, et al.Studies on copper-yttria nanocomposites: High-energy ball milling versus chemical reduction method[J]. Journal of Nanoscience and Nanotechnology, 2012, 12(3): 2591-2597. [33] ZHUO H, TANG J, YE N.A novel approach for strengthening Cu-Y2O3 composites by in situ reaction at liquidus temperature[J]. Materials Science and Engineering A, 2013, 584: 1-6. [34] HUANG B, HISHINUMA Y, NOTO H, et al.In-situ fabrication of yttria dispersed copper alloys through MA-HIP process[J]. Nuclear Materials and Energy, 2018, 16: 168-174. [35] 卓海鸥, 唐建成, 叶楠. 液相原位反应法制备Cu-Y2O3复合材料[J]. 金属学报, 2012, 48(12): 1474-1478. ZHUO Haiou, TANG Jiancheng, YE Nan.Cu-Y2O3 composites prepared by liquid phase in situ reaction[J]. Acta Metallurgica Sinica, 2012, 48(12): 1474-1478. [36] AGHAMIRI S M S, OONO N, UKAI S, et al. Microstructure development and high tensile properties of He/H2 milled oxide dispersion strengthened copper[J]. Journal of Alloys and Compounds, 2019, 783: 674-679. [37] AGHAMIRI S M S, ZHANG S H, UKAI S, et al. Microstructure development in cryogenically rolled oxide dispersion strengthened copper[J]. Materialia, 2020, 9: 100520. [38] AGHAMIRI S M S, OONO N, UKAI S, et al. Microstructure and mechanical properties of mechanically alloyed ODS copper alloy for fusion material application[J]. Nuclear Materials and Energy, 2018, 15: 17-22. [39] CARRO G, MUÑOZ A, MONGE M A, et al. Fabrication and characterization of Y2O3 dispersion strengthened copper alloys[J]. Journal of Nuclear Materials, 2014, 455(1/3): 655-659. [40] 谢鲲, 张惠, 张守清. 稀土氧化物弥散强化铜基复合材料的制备技术[J]. 热加工工艺, 2016, 45(10): 25-29. XIE Kun, ZHANG Hui, ZHANG Shouqing.Manufacture technology of rare earth oxides dispersion strengthened Cu- based composite[J]. Hot Working Technology, 2016, 45(10): 25-29. [41] TAHA M A, NASSAR A H, ZAWRAH M F.Effect of milling parameters on sinterability, mechanical and electrical properties of Cu-4wt.%ZrO2 nanocomposite[J]. Materials Chemistry and Physics, 2016, 181: 26-32. [42] MOHAMMED A T, ZAWRAH M F.Effect of nano ZrO2 on strengthening and electrical properties of Cu-matrix nanocomposits prepared by mechanical alloying[J]. Ceramics International, 2017, 43(15): 12698-12704. [43] FATHY A, ELKADY O, ABU-OQAIL A.Microstructure, mechanical and wear properties of Cu-ZrO2 nanocomposites[J]. Materials Science and Technology, 2017, 33(17): 2138-2146. [44] FATHY A, ELKADY O, ABU-OQAIL A.Synthesis and characterization of Cu-ZrO2 nanocomposite produced by thermochemical process[J]. Journal of Alloys and Compounds, 2017, 719(30): 411-419. [45] FATHY A, WAGIH A, ABU-OQAIL A.Effect of ZrO2 content on properties of Cu-ZrO2 nanocomposites synthesized by optimized high energy ball milling[J]. Ceramics International, 2019, 45(2): 2319-2329. [46] 梁淑华, 范志康, 徐磊, 等. 原位生成Al2O3/Cu复合材料的新工艺[J]. 复合材料学报, 2003, 20(3): 93-97. LIANG Shuhua, FAN Zhikang, XU Lei, et al.New processing for preparing Al2O3/Cu composite by in situ reaction[J]. Acta Materiae Compositae Sinica, 2003, 20(3): 93-97. [47] 虞涛. 机械合金化制备Al2O3颗粒增强铜基复合材料的研究[D]. 南京: 东南大学, 2017. YU Tao.Study on the preparation of Cu-based composites reinforced with alumina particles by mechanical alloying[D]. Nanjing: Southeast University, 2017. |
|
|
|