Please wait a minute...
材料导报  2026, Vol. 40 Issue (10): 25040219-11    https://doi.org/10.11896/cldb.25040219
  金属与金属基复合材料 |
铝合金先进断续时效工艺的研究进展
邓传森1, 肖红婷1, 刘严1, 赵晨旭1, 林斌1, 陈俊锋1,*, 陈玉龙1, 邹林池2, 闵爱武3, 方添文3
1 福州大学材料科学与工程学院,福州 350116
2 福建理工大学材料科学与工程学院,福州 350118
3 福建省南平铝业股份有限公司,福建 南平 353000
Research Progress on Advanced Interrupted Aging Process of Aluminum Alloys
DENG Chuansen1, XIAO Hongting1, LIU Yan1, ZHAO Chenxu1, LIN Bin1, CHEN Junfeng1,*, CHEN Yulong1, ZOU Linchi2, MIN Aiwu3, FANG Tianwen3
1 School of Materials Science and Engineering, Fuzhou University, Fuzhou 350116, China
2 School of Materials Science and Engineering, Fujian University of Technology, Fuzhou 350118, China
3 Fujian Nanping Aluminum Co.,Ltd., Nanping 353000, Fujian, China
下载:  全 文 ( PDF ) ( 26205KB ) 
输出:  BibTeX | EndNote (RIS)      
摘要 随着科技进步和工业发展,铝合金的服役条件日趋严苛。传统热处理工艺已难以满足其性能提升的应用需求。近年来出现一种新型铝合金先进时效工艺——断续时效,即在传统单级时效加入一段低温时效。由于低温时效的加入,增加合金内固溶原子团簇数量,能够获得更加细小且均匀分布的析出相,不仅能显著提升合金强度,还能改善合金的腐蚀性能。断续时效工艺新颖,析出组织调控更精细化、强化机理独特,且不同系列、成分的铝合金在工艺处理与性能表现上有着独特的差异性。本文旨在阐述断续时效工艺的特点,综述近些年铝合金断续时效热处理工艺的最新研究动态与发展,全面地探讨了该工艺对铝合金析出行为的影响规律,详细阐述断续时效提升铝合金综合性能的机制,为促进铝合金先进时效工艺研发与应用提供参考。
服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
邓传森
肖红婷
刘严
赵晨旭
林斌
陈俊锋
陈玉龙
邹林池
闵爱武
方添文
关键词:  断续时效  铝合金  微观组织  力学性能  腐蚀性能    
Abstract: With the advancement of technology and industrial development, aluminum alloys are increasingly subjected to more demanding service conditions. Traditional heat treatment processes are no longer sufficient to meet the performance requirements for advanced applications. An advanced aging process of Al alloys, named interrupted aging process, has gained popularity and wide application in recent years. The interrupted aging process adds a period of low-temperature aging which promotes atomic clusters and improves the precipitate’s fine and uniform distribution, into the traditional aging. The finely and uniformly distributed precipitates not only enhance the strength but also enhance the comprehensive performance of the alloys. At the same time, the corrosion resistance of Al alloys can also be improved by appropriately prolonging the low-temperature aging time. Interrupted aging is a novel aging process with a unique strengthening mechanism. Through comprehensively discussing the influence of the interrupted aging process on the microstructure and properties of Al alloys, this summary introduces its characteristics and summarizes the latest research results and developments in this field. Additionally, elaborates the toughening mechanism of interrupted aging process. These aim to promoting the development and application of the advanced interrupted aging process of Al alloys.
Key words:  interrupted aging    Al alloy    microstructure    mechanical property    corrosion property
发布日期:  2026-06-03
ZTFLH:  TG156  
基金资助: 国家自然科学基金(52271095;52271099;51901044);福建省高校产学合作项目(2024H6004;2024H4021);福建省自然科学基金(2022J01946)
通讯作者:  *陈俊锋,博士,福州大学材料科学与工程学院教授、博士研究生导师。目前主要从事高性能铝合金及其复合材料的制备与加工,金属材料的变形断裂行为及其计算机模拟和铝合金、镁合金的腐蚀与防护等研究。chenjunfeng@fzu.edu.cn   
作者简介:  邓传森,福州大学材料科学与工程学院硕士研究生,在陈俊锋教授的指导下研究铝合金热处理与相场模拟。
引用本文:    
邓传森, 肖红婷, 刘严, 赵晨旭, 林斌, 陈俊锋, 陈玉龙, 邹林池, 闵爱武, 方添文. 铝合金先进断续时效工艺的研究进展[J]. 材料导报, 2026, 40(10): 25040219-11.
DENG Chuansen, XIAO Hongting, LIU Yan, ZHAO Chenxu, LIN Bin, CHEN Junfeng, CHEN Yulong, ZOU Linchi, MIN Aiwu, FANG Tianwen. Research Progress on Advanced Interrupted Aging Process of Aluminum Alloys. Materials Reports, 2026, 40(10): 25040219-11.
链接本文:  
https://www.mater-rep.com/CN/10.11896/cldb.25040219  或          https://www.mater-rep.com/CN/Y2026/V40/I10/25040219
1 Feng Chun, Liu Zhiyi, Ning Ailin, et al. Materials Reports, 2006, 20(4), 98(in Chinese).
冯春, 刘志义, 宁爱林, 等. 材料导报, 2006, 20(4), 98.
2 Lumley R N, Morton A J, Polmear I J. Acta Materialia, 2002, 50(14), 3597.
3 Lumley R N, Polmear I J, Morton A J. U. S. patent, 7025839, 2006.
4 Lumley R N, Polmear I J, Morton A J. U. S. patent, 7037391, 2006.
5 Wang H S, Yi D Q, Liu H Q. Materials Letters, 2021, 285, 129199.
6 Liu F Y, Zhong Y R, Xin R L. Materials Science & Engineering A, 2024, 906, 146685.
7 Yang X W, Ye L Y, Zhang Y, et al. Transactions of Nonferrous Metals Society of China, 2024, 34(8), 2415.
8 Gu Gang, Ye Lingying, Zhang Xinming, et al. Chinese Journal of Nonferrous Metals, 2013, 23(8), 2098(in Chinese).
顾刚, 叶凌英, 张新明, 等. 中国有色金属学报, 2013, 23(8), 2098.
9 Li Yang. Effect of graded aging process on the tensile properties of 2195 alloy. Master's Thesis, Harbin Institute of Technology, China, 2009(in Chinese).
李杨. 分级时效工艺对2195铝锂合金拉伸性能的影响. 硕士学位论文, 哈尔滨工业大学, 2009.
10 Li Hongying, Zhang Xiaojun, Zhang Jianfei, et al. Chinese Journal of Nonferrous Metals, 2008, 18(3), 426(in Chinese).
李红英, 张孝军, 张建飞, 等. 中国有色金属学报, 2008, 18(3), 426.
11 Sun Bo, Nie Jiamin, Li Xiaodan, et al. Heat Treatment of Metals, 2023, 48(9), 8(in Chinese).
孙博, 聂佳民, 李晓丹, 等. 金属热处理, 2023, 48(9), 8.
12 Jyoti R S, Aparna T, Sumeet M. Materials Science & Engineering A, 2023, 880, 145320.
13 Jiang X J, Noble B, Holme B, et al. Metallurgical and Materials Tra-nsactions A-physical Metallurgy and Materials Science, 2000, 31(2), 339.
14 Yang Z, Banhart J. Acta Materialia, 2021, 215, 117014.
15 Jin H M, Tie D, Guan R G. Materials & Design, 2022, 220, 110883.
16 Lynch S P. Materials Science & Engineering A, 1991, 136(91), 25.
17 Pitcher P D, Stewart R J, Gupta S. Scripta Metallurgica Et Materialia, 1992, 26(4), 511.
18 Kerr M J, Sweet E D, Bennett C G, et al. Materials ence Forum, 1996, 217, 1079.
19 Lumley R N, Polmear I J, Morton A J. Materials Forum, 2004, 28, 85.
20 Pramod S L, Ravikirana, Rao A K P, et al. Materials Science & Engineering A, 2016, 674, 438.
21 Wei S L, Wang R C, Zhang H, et al. Journal of Materials Science, 2021, 56(4), 3472.
22 Zhou L, Chen K H, Chen S Y, et al. Journal of Alloys and Compounds, 2021, 850, 156717.
23 Hou L G, Yu H, Wang Y W, et al. Journal of Materials Science & Technology, 2022, 120, 15.
24 Huang L P, He L L, Chen S Y, et al. Journal of Alloys and Compounds, 2020, 842, 155542.
25 Wang W Y, Pan Q L, Wang X D, et al. Journal of Alloys and Compounds, 2020, 845, 156286.
26 Xia L, Li Y, Huang M, et al. Journal of Materials Science, 2022, 57(11), 6372.
27 Chen P S, Bhat B N. NASA technical report, Alabama, America, 2002.
28 Gayle F W, Goodway M. Science, 1994, 266(5187), 1015.
29 Su R M, Jia Y X, Xiao J, et al. China Foundry, 2023, 20(1), 71.
30 Guo J C, Su R M, Li G L, et al. International Journal of Metalcasting, 2024, 18(3), 2268.
31 Lumley R N, Polmear I J, Morton A J. Materials Science Forum, 2002, 396, 893.
32 Lumley R N, Polmear I J, Morton A J. Materials Science and Technology, 2003, 19(11), 1483.
33 Buha J, Lumley R N, Crosky A G, et al. Acta Materialia, 2007, 55(9), 3015.
34 Buha J, Lumley R N, Crosky A G. Metallurgical & Materials Transactions A, 2006, 37(10), 3119.
35 Risanti D D, Yin M, Castillo P E J R D, et al. Materials Science & Engineering A, 2009, 523(1-2), 99.
36 Marceau R K W, Sha G, Lumley R N, et al. Acta Materialia, 2010, 58(5), 1795.
37 Wang Shihao, Chen Jianghua, Liu Chunhui, et al. Journal of Chinese Electron Microscopy Society, 2012, 31(5), 420(in Chinese).
王时豪, 陈江华, 刘春辉, 等. 电子显微学报, 2012, 31(5), 420.
38 Dutta I, Allen S M, Hafley J L. Metallurgical & Materials Transactions A, 1991, 22(11), 2553.
39 Edwards G A, Stiller K, Dunlop G L. Acta Materialia, 1998, 46(11), 3893.
40 Yu Lijun, Zheng Ziqiao, Li Shichen, et al. Transactions of Materials and Heat Treatment, 2006, 27(5), 79(in Chinese).
于利军, 郑子樵, 李世晨, 等. 材料热处理学报, 2006, 27(5), 79.
41 Gao N, Starink M J, Kamp N, et al. Journal of Materials Science, 2007, 42(12), 4398.
42 Buha J, Lumley R N, Crosky A G. Materials Science and Engineering:A, 2008, 492(1-2), 1.
43 Gang S, Cerezo A. Acta Materialia, 2004, 52(15), 4503.
44 Zou Y, Cao L, Wu X, et al. Journal of Alloys and Compounds, 2020, 823, 153792.
45 Jacumasso S C, Oliveira P H F, Martins J P, et al. Materials Characte-rization, 2019, 152, 180.
46 Carvalho A L M, Renaudin L B, Zara A J, et al. Journal of Alloys and Compounds, 2022, 907, 164400.
47 Wei T, Chen R, Xu X, et al. Journal of Materials Engineering and Performance, 2023, 32(15), 6630.
48 Lumley R N, Polmear I J, Morton A J. Materials Science Forum, 2003, 426, 303.
49 Gabriel P, Caue C, Carlos B. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 2024, 46(8), 498.
50 Zhang Kun, Dai Shenglong, Huang Min, et al. Journal of Aeronautical Materials, 2007, 27(4), 1(in Chinese).
张坤, 戴圣龙, 黄敏, 等. 航空材料学报, 2007, 27(4), 1.
51 Lumley R N, Polmear I J, Morton A J. Metal Science Journal, 2005, 21(9), 1025.
52 Liu Pingli, Zhang Jian, Li Jinfeng, et al. Aerospace Materials and Technology, 2014, 44(5), 50(in Chinese).
刘平礼, 张健, 李劲风, 等. 宇航材料工艺, 2014, 44(5), 50.
53 Lv P H, Wang R C, Peng C Q, et al. Materials Science & Engineering A, 2023, 873, 145023.
54 Gui Xinghui, Ye Lingying, Sun Daxiang, et al. Chinese Journal of Nonferrous Metals, 2014, 24(12), 2995 (in Chinese).
贵星卉, 叶凌英, 孙大翔, 等. 中国有色金属学报, 2014, 24(12), 2995.
55 Han Nianmei, Zhang Xinming, Liu Shengdan, et al. Journal of Central South University:Science and Technology, 2012, 43(9), 3363 (in Chinese).
韩念梅, 张新明, 刘胜胆, 等. 中南大学学报:自然科学版, 2012, 43(9), 3363.
56 Chen Yuqiang, Song Wenwei, Pan Suping, et al. Journal of Central South University:Science and Technology, 2016, 47(10), 3332(in Chinese).
陈宇强, 宋文炜, 潘素平, 等. 中南大学学报:自然科学版, 2016, 47(10), 3332.
57 Chen Yuqiang, Zhang Wentao, Zhang Hao, et al. Materials Reports, 2020, 34(7), 14122(in Chinese).
陈宇强, 张文涛, 张浩, 等. 材料导报, 2020, 34(7), 14122.
58 Chen Y Q, Xu J B, Pan S P, et, al. Journal of Central South University, 2022, 29 (3), 924.
59 Antunes A M B S, Baptista C A R P, Barboza M J R, et al. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 2019, 41(8), 319.
60 Guérin M, Alexis J, Andrieu E, et al. Corrosion Science, 2016, 102, 291.
61 Ma Y, Zhou X, Huang W, et al. Materials Chemistry & Physics, 2015, 161, 201.
62 Ma Y, Zhou X, Huang W, et al. Corrosion Engineering Science and Technology, 2015, 50(6), 420.
63 Zhou Xiaorong. Corrosion, 2017, 73(8), 988.
64 Xu X H, Deng Y L, Pan Q L, et al. Metallurgical and Materials Tran-sactions A, 2021, 52(11), 4907.
65 Li J W, Yin S Y, Zhou Q S, et al. Journal of Materials Research, 2023, 38(22), 4867.
66 Li Hai, Pan Daozao, Wang Zhixiu, et al. Acta Metallurgica Sinica, 2010, 46(4), 494(in Chinese).
李海, 潘道召, 王芝秀, 等. 金属学报, 2010, 46(4), 494.
67 Xu Xuehong, Deng Yunlai, Chi Shuiqing, et al. Journal of Materials Research and Technology, 2020, 9(1), 230.
68 Tian A Q, Xu X H, Sun L, et al. Journal of Central South University, 2022, 29(3), 821.
69 Qi H, Liu X Y, Liang S X, et al. Journal of Alloys and Compounds, 2016, 657, 318.
70 Soumyajeet M, Govinda R, Prasanta K R. Materials and Corrosion, 2023, 74(10), 1471.
71 Xia L Y, Li Y B, Huang M H, et al. Journal of Alloys and Compounds, 2023, 956, 170055.
[1] 索智, 宫臣, 野堯, 赵子豪, 丁习周, 李加禾, 徐士杰. 基于道路服役年限下多循环再生混凝土力学强度损伤演变及机理探究[J]. 材料导报, 2026, 40(9): 25040084-7.
[2] 杨至高, 谢小林, 江洪流, 叶亮亮, 许旺达. 碳纤维化学接枝MXene:碳纤维/环氧树脂复合材料的界面强化与力学性能提升[J]. 材料导报, 2026, 40(9): 25040063-7.
[3] 欧阳景豪, 吴婷婷, 李瑶, 杨凤, 李东翰. 油胺对天然橡胶/白炭黑复合材料结构与性能的影响[J]. 材料导报, 2026, 40(9): 25030241-7.
[4] 王思莹, 刘文欢, 郝毅, 常宁, 焦小玉, 李辉. 热活化赤泥多固废基胶凝材料的性能优化及水化特性[J]. 材料导报, 2026, 40(8): 25030240-11.
[5] 刘向, 朱海峰, 张东生, 毛明杰, 杨秋宁. 3D打印参数对地聚物混凝土力学性能的影响及深度学习预测模型[J]. 材料导报, 2026, 40(8): 25030205-9.
[6] 戴耀南, 潘凌峰, 徐逸恒, 丁珮珊, 郑小涛. 核级316型不锈钢高温液钠腐蚀效应的研究进展[J]. 材料导报, 2026, 40(8): 25040054-11.
[7] 张家傅, 单雪影, 黄其鑫, 刁玉璇, 李锦春. 含磷低分子量聚苯醚的制备及在环氧树脂阻燃中的应用[J]. 材料导报, 2026, 40(8): 25040078-7.
[8] 李小占, 刘乐天, 洪志强, 武晓燕, 田世伟, 江海涛, 陈雨来. 6016铝合金多道次热轧过程微观组织数值模拟及实验研究[J]. 材料导报, 2026, 40(7): 25030025-7.
[9] 张思凡, 罗威, 方媛, 刘毅, 朱建锋. 固溶型MAX相材料的研究进展[J]. 材料导报, 2026, 40(7): 25030103-13.
[10] 邬富宝, 乔波, 王晓亭, 吴利军, 张世全, 郑宏伟. 基于CMT技术的铝合金电弧增材制造研究进展[J]. 材料导报, 2026, 40(7): 25030111-12.
[11] 高晨宇, 王艳, 张少辉, 李奥阳, 吴杰, 霍钰仁, 卢冠楠. 解胶剂改性废弃碳纤维预浸料及其对混凝土力学及导电性能的影响[J]. 材料导报, 2026, 40(6): 25050007-11.
[12] 李涛. 氮化物涂层在PEMFC金属双极板领域的应用[J]. 材料导报, 2026, 40(6): 25010055-10.
[13] 童福佳, 张冠, 谢磊, 赵冬梅, 任铁真. Ta添加对铁基非晶合金涂层耐腐蚀性能的影响[J]. 材料导报, 2026, 40(6): 25020082-8.
[14] 郭爽, 白玉, 高元明, 马文. 碳纳米管及纳米氧化铝共掺杂对铝合金微弧氧化膜层耐蚀及耐磨性的影响[J]. 材料导报, 2026, 40(6): 25030024-7.
[15] 乔木, 赵志伟, 穆柄运, 张涵. MWCNTs对放电等离子烧结制备Ti(C,N)微观结构和综合性能的影响[J]. 材料导报, 2026, 40(6): 25010106-7.
[1] Lanyan LIU,Jun SONG,Bowen CHENG,Wenchi XUE,Yunbo ZHENG. Research Progress in Preparation of Lignin-based Carbon Fiber[J]. Materials Reports, 2018, 32(3): 405 -411 .
[2] Haoqi HU,Cheng XU,Lijing YANG,Henghua ZHANG,Zhenlun SONG. Recent Advances in the Research of High-strength and High-conductivity CuCrZr Alloy[J]. Materials Reports, 2018, 32(3): 453 -460 .
[3] Xinxing ZHOU,Shaopeng WU,Xiao ZHANG,Quantao LIU,Song XU,Shuai WANG. Molecular-scale Design of Asphalt Materials[J]. Materials Reports, 2018, 32(3): 483 -495 .
[4] Ping ZHU,Guanghui DENG,Xudong SHAO. Review on Dispersion Methods of Carbon Nanotubes in Cement-based Composites[J]. Materials Reports, 2018, 32(1): 149 -158 .
[5] Fangyuan DONG,Shansuo ZHENG,Mingchen SONG,Yixin ZHANG,Jie ZHENG,Qing QIN. Research Progress of High Performance ConcreteⅠ:Raw Materials and Mix Proportion Design Method[J]. Materials Reports, 2018, 32(1): 159 -166 .
[6] Guiqin HOU,Yunkai LI,Xiaoyan WANG. Research Progress of Zinc Ferrite as Photocatalyst[J]. Materials Reports, 2018, 32(1): 51 -57 .
[7] Yan MA,Zhi LI,Ruilong RAN,Kang LI. Research on Application of Silk in Biomaterial Field[J]. Materials Reports, 2018, 32(1): 86 -92 .
[8] Kui ZHENG,Changlai YUAN,Xingxing ZHOU,Weiqing WANG,Jiwen XU,Changrong ZHOU. Microstructures and Energy-storage Properties of Ba0.04Bi0.48Na0.48TiO3-SrTiO3 Ceramics[J]. Materials Reports, 2018, 32(2): 171 -175 .
[9] Shilie DENG,Huimin XIAN,Xi CHEN,Lingyun TANG,Jiang ZHANG,Zhongquan MAO. Enhanced Magnetic Properties of Bismuth Ferrite by La and Nb Co-doping[J]. Materials Reports, 2018, 32(2): 176 -179 .
[10] Wei LIU,Houhe CHEN. 1D Energetic Metal-organic Frameworks: Synthesis and Properties[J]. Materials Reports, 2018, 32(2): 223 -227 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed