Please wait a minute...
材料导报  2025, Vol. 39 Issue (13): 24050222-16    https://doi.org/10.11896/cldb.24050222
  金属与金属基复合材料 |
激光熔覆高熵合金涂层的研究进展
韩娟1,2, 龙雨3, 徐流杰4, 赖伟基5, 龙绍檑6, 邓澄7, 周圣丰1,2, 于振涛1,2, 李卫1,2, 易艳良1,2,8,*
1 暨南大学先进耐磨蚀及功能材料研究院,广州 510632
2 暨南大学化学与材料学院,广州 510632
3 广西大学广西有色金属及特色材料加工重点实验室,南宁 530004
4 河南科技大学金属材料磨损控制与成型技术国家地方联合工程研究中心,河南 洛阳 471003
5 暨南大学附属第五医院(河源市深河人民医院),广东 河源 517000
6 贵州理工学院材料与能源工程学院,贵阳 550003
7 广东技术师范大学机电学院,广州 510635
8 暨南大学韶关研究院,广东 韶关 512027
Research Progress of High-entropy Alloy Coatings Prepared by Laser Cladding
HAN Juan1,2, LONG Yu3, XU Liujie4, LAI Weiji5, LONG Shaolei6, DENG Cheng7, ZHOU Shengfeng1,2, YU Zhentao1,2, LI Wei1,2, YI Yanliang1,2,8,*
1 Institute of Advanced Wear and Corrosion Resistant and Functional Materials, Jinan University, Guangzhou 510632, China
2 College of Chemistry and Materials Science, Jinan University, Guangzhou 510632, China
3 Guangxi Key Laboratory of Processing for Non-ferrous Metals and Featured Materials, Guangxi University, Nanning 530004, China
4 National Joint Engineering Research Center for Abrasion Control and Molding of Metal Materials, Henan University of Science and Technology, Luoyang 471003, Henan, China
5 The Fifth Affiliated Hospital (Heyuan Shenhe People’s Hospital), Jinan University, Heyuan 517000, Guangdong, China
6 School of Materials and Energy Engineering, Guizhou Institute of Technology, Guiyang 550003, China
7 School of Mechatronic Engineering, Guangdong Polytechnic Normal University, Guangzhou 510635, China
8 Shaoguan Research Institute of Jinan University, Shaoguan 512027, Guangdong, China
下载:  全 文 ( PDF ) ( 68764KB ) 
输出:  BibTeX | EndNote (RIS)      
摘要 近年来,高熵合金凭借其耐磨损、耐腐蚀、强韧性、高温抗氧化性和生物相容性等优异性能引起了人们广泛关注。激光熔覆是一种涉及多学科的现代表面强化技术,具有能量密度高、快速加热和冷却、稀释率低、热影响区小、成分偏析少、冶金结合性好等特点。本文综述了激光熔覆高熵合金涂层的最新研究进展。首先,概述了高熵合金的设计理念以及激光熔覆高熵合金涂层的优点。然后,介绍了激光熔覆高熵合金涂层的相结构和性能特征,以及合金元素对其影响规律,讨论了激光工艺参数和辅助激光熔覆技术对激光熔覆高熵合金涂层组织结构和性能的影响。最后,总结与展望了激光熔覆高熵合金涂层的发展趋势。
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
韩娟
龙雨
徐流杰
赖伟基
龙绍檑
邓澄
周圣丰
于振涛
李卫
易艳良
关键词:  激光熔覆  高熵合金  涂层  相结构    
Abstract: In recent years, high-entropy alloys have attracted significant attention due to their excellent properties, such as good wear resistance, corrosion resistance, high impact toughness, high temperature oxidation resistance, and biocompatibility. Laser cladding (LC) is a modern surface strengthening technology with high energy density, rapid heating and cooling. It can obtain low dilution rate, small heat affected zone, less component segregation, and good metallurgical bonding. This article reviews the latest research progress of laser cladding high-entropy alloy coatings (LC-HEACs). Firstly, the design concept of high-entropy alloys and the advantages of LC-HEACs are summarized. The microstructure, properties and influence of alloying elements of LC-HEACs are introduced. Then, the effects of process parameters and assisted laser cladding technology on the phase structure and properties of LC-HEACs are discussed. Finally, the future development trend of LC-HEACs is summarized and prospected.
Key words:  laser cladding    high-entropy alloy    coating    phase structure
出版日期:  2025-07-10      发布日期:  2025-07-21
ZTFLH:  TG174.4  
基金资助: 国家自然科学基金(52005217;202206010030);广东省基础与应用基础研究基金(2022A1515220040;2023A1515220021;2024A1515012353;2023A1515012684);广州市科技计划项目(2024A04J4063;202206010030);中国博士后科学基金(2023M741370);广西有色金属及特色材料加工重点实验室开放课题(2022GXYSOF18);金属材料磨损控制与成型技术国家地方联合工程研究中心开放基金(HKDNM2021011)
通讯作者:  *易艳良,博士。现为暨南大学副教授、硕士研究生导师。研究方向主要为激光增材制造,高温/高熵合金制造,金属/涂层材料摩擦磨损、腐蚀及高温氧化。y_yanliang@163.com   
作者简介:  韩娟,暨南大学先进耐磨蚀及功能材料研究院硕士研究生,在易艳良副教授的指导下进行研究。目前主要研究领域为高熵合金涂层。
引用本文:    
韩娟, 龙雨, 徐流杰, 赖伟基, 龙绍檑, 邓澄, 周圣丰, 于振涛, 李卫, 易艳良. 激光熔覆高熵合金涂层的研究进展[J]. 材料导报, 2025, 39(13): 24050222-16.
HAN Juan, LONG Yu, XU Liujie, LAI Weiji, LONG Shaolei, DENG Cheng, ZHOU Shengfeng, YU Zhentao, LI Wei, YI Yanliang. Research Progress of High-entropy Alloy Coatings Prepared by Laser Cladding. Materials Reports, 2025, 39(13): 24050222-16.
链接本文:  
https://www.mater-rep.com/CN/10.11896/cldb.24050222  或          https://www.mater-rep.com/CN/Y2025/V39/I13/24050222
1 Cantor B, Chang I T H, Knight P, et al.Materials Science and Enginee-ring:A, 2004, 375, 213.
2 Yeh J W, Chen S K, Lin S J, et al.Advanced Engineering Materials, 2004, 6(5), 299.
3 Tsai M H, Yeh J W.Materials Research Letters, 2014, 2(3), 107.
4 Yeh J W, Chang S Y, Hong Y D, et al.Materials Chemistry and Physics, 2007, 103(1), 41.
5 Tsai K Y, Tsai M H, Yeh J W.Acta Materialia, 2013, 61(13), 4887.
6 Liu S S, Zhang M, Zhao G L, et al.Intermetallics, 2022, 140, 107402.
7 Wang X Y, Liu Q, Huang Y B, et al.Materials, 2020, 13(10), 2209.
8 Di Y N, Liu H X, Zhang X W, et al.Rare Metal Materials And Engineering, 2021, 50(8), 2883 (in Chinese).
邸英南, 刘洪喜, 张晓伟, 等. 稀有金属材料与工程, 2021, 50(8), 2883.
9 Guo Y X, Li X M, Liu Q B.Materials & Design, 2020, 196, 109085.
10 Suryanarayana C, Al-Aqeeli N.Progress in Materials Science, 2013, 58(4), 383.
11 Wu Y D, Cai Y H, Chen X H, et al.Materials & Design, 2015, 83, 651.
12 Han B, Chen Y B, Tan C W, et al.Surface & Coatings Technology, 2022, 434, 128241.
13 Chen T K, Wong M S, Shun T T, et al.Surface & Coatings Technology, 2005, 200(5-6), 1361.
14 Soare V, Burada M, Constantin I, et al.Applied Surface Science, 2015, 358, 533.
15 Zhu L D, Xue P S, Lan Q, et al.Optics and Laser Technology, 2021, 138, 106915.
16 Yang C M, Liu X B, Zhu Z X, et al.Tribology International, 2024, 191, 109106.
17 Li W J, Guo W M, Zhang H L, et al.Entropy, 2022, 24(4), 539.
18 Li M Y, Zhang Q, Han B, et al.Materials Chemistry and Physics, 2021, 258, 123850.
19 Wang T, Wang C, Li J J, et al.Materials Characterization, 2022, 193, 112314.
20 Liu Y Y, Yao Z P, Zhang P, et al.Applied Surface Science, 2022, 606, 154862.
21 Wu H, Zhang S, Wang Z Y, et al.International Journal of Refractory Metals & Hard Materials, 2022, 102, 105721.
22 Li Q Y, Zhang H, Li D C, et al.Materials, 2019, 12(3), 533.
23 Liu H, Gao Q, Hao J B, et al.Rare Metal Materials And Engineering, 2022, 51(6), 2199 (in Chinese).
刘昊, 高强, 郝敬宾, 等. 稀有金属材料与工程, 2022, 51(6), 2199.
24 Cui C, Wu M P, Miao X J, et al.Journal of Alloys and Compounds, 2022, 890, 161826.
25 Zhang S, Wu C L, Zhang C H, et al.Optics & Laser Technology, 2016, 84, 23.
26 Zhang S, Wu C L, Yi J Z, et al.Surface and Coatings Technology, 2015, 262, 64.
27 Sun S F, Liu H, Hao J B, et al.Journal of Alloys and Compounds, 2021, 886, 161251.
28 Cui Y, Shen J, Manladan S M, et al.Applied Surface Science, 2020, 530, 147205.
29 Guan Y J, Cui X F, Chen D, et al.Technology, 2023, 467, 129695.
30 Ben Q, Zhang Y M, Sun L X, et al.Metals, 2022, 12(9), 1428.
31 Feng M Y, Lin T X, Lian G F, et al.Journal of Materials Research and Technology, 2024, 28, 3835.
32 Jiang Y Q, Li J, Juan Y F, et al.Journal of Alloys and Compounds, 2019, 775, 1.
33 Li X F, Feng Y H, Wang X, et al.Journal of Alloys and Compounds, 2022, 926, 166778.
34 Liang H, Hou J X, Cao Z Q, et al.Tribology International, 2023, 179, 108171.
35 Deng C, Wang C, Chai L J, et al.Intermetallics, 2022, 144, 107504.
36 Xu Q L, Liu K C, Wang K Y, et al.Corrosion Science, 2021, 192, 109781.
37 Thanhhung N, Ly X, Huang M, et al.Journal of Thermal Spray Technology, 2022, 31(4), 980.
38 Gu Z, Xi S Q, Sun C F.Journal of Alloys and Compounds, 2020, 819, 152986.
39 Shen Q, Li Y, Zhao J, et al.Crystals, 2021, 11(9), 1096.
40 Wang W R, Qi W, Zhang X L, et al.International Journal of Minerals Metallurgy and Materials, 2021, 28(5), 888.
41 Wu X H, Lu Y J.Coatings, 2022, 12(12), 1855.
42 Li Z T, Jing C N, Feng Y, et al.International Journal of Refractory Me-tals & Hard Materials, 2023, 110, 105992.
43 Fu Y, Huang C, Du C W, et al.Corrosion Science, 2021, 191, 109727.
44 Shi F K, Zhang Q K, Xu C, et al.Optics and Laser Technology, 2022, 151, 108020.
45 Zeng X, Liu Z Y, Wu G G, et al.Surface & Coatings Technology, 2021, 418, 127243.
46 Wen X, Cui X F, Jin G, et al.Corrosion Science, 2022, 201, 110305.
47 Hong S C, Li J, Zhao P, et al.Coatings, 2022, 12(2), 121.
48 Jiang D, Cui H Y, Zhao X F, et al.Materials & Design, 2022, 219, 110751.
49 Liu J Z, Liu H X, Di Y N, et al.China Surface Engineering, 2020, 33(6), 118 (in Chinese).
刘径舟, 刘洪喜, 邸英南, 等. 中国表面工程, 2020, 33(6), 118.
50 Shang X J, Bo S H, Guo Y X, et al.Applied Surface Science, 2021, 564, 150466.
51 Zhang C, Chen G J, Dai P Q.Materials Science and Technology, 2016, 32(16), 1666.
52 Rui H, Wu M P, Chen C, et al.Surface & Coatings Technology, 2022, 447, 128851.
53 Qiu X W.Journal of Materials Research and Technology, 2020, 9(3), 5127.
54 Liu S S, Zhao G L, Wang X H, et al.Surface & Coatings Technology, 2022, 447, 128832.
55 Ding L, Wang H X.Journal of Thermal Spray Technology, 2021, 30(8), 2187.
56 Liu H, Gao Q, Dai J B, et al.Tribology International, 2022, 172, 107574.
57 Ma Q, Lu B W, Zhang Y M, et al.Materials Letters, 2022, 324, 132667.
58 Qi M, Cui X F, Jin G, et al.Surface and Coatings Technology, 2024, 477, 130299.
59 Li Y T, Wang K M, Fu H G, et al.Applied Surface Science, 2022, 585, 152703.
60 Zhang Y, Han T F, Xiao M, et al.Surface & Coatings Technology, 2020, 401, 126233.
61 Yang Y C, Ren Y J, Tian Y W, et al.Surface & Coatings Technology, 2022, 432, 128009.
62 Liang G, Jin G, Cui X F, et al.Applied Surface Science, 2022, 572, 151407.
63 Li Y Z, Shi Y, Wang H X, et al.Lubricants, 2023, 11(2), 50.
64 Zhang Y, Zhou Y J, Lin J P, et al.Advanced Engineering Materials, 2008, 10(6), 534.
65 Guo S, Liu C T.Progress in Natural Science:Materials International, 2011, 21(6), 433.
66 Juan Y F, Li J, Jiang Y Q, et al.Applied Surface Science, 2019, 465, 700.
67 Liu H, Wang R T, Wang Q Q, et al.Surface and Coatings Technology, 2023, 471, 129895.
68 Zhang Q, Li M Y, Wang Q, et al.Coatings, 2023, 13(7), 1211.
69 Huang R R, Zhou F, Kuang S H, et al.Journal of Materials Research and Technology, 2023, 27, 5709.
70 Li S, Yamaguchi T.Surface and Coatings Technology, 2022, 433, 128123.
71 Zhang H L, Li W J, Xu H H, et al.Coatings, 2022, 12(5), 628.
72 Zhang G J, Tian Q W, Yin K X, et al.Intermetallics, 2020, 119, 106722.
73 Shu F Y, Liu S, Zhao H Y, et al.Journal of Alloys and Compounds, 2018, 731, 662.
74 Hao X H, Liu H X, Zhang X W, et al.Journal of Materials Research and Technology, 2024, 29, 1.
75 Zhang P, Yao Z P, Huang L, et al.Surface and Coatings Technology, 2023, 469, 129793.
76 Liu H, Li X F, Hua P, et al.Journal of Thermal Spray Technology, 2022, 31(4), 991.
77 Gao Q, Liu H, Chen P J, et al.Optics & Laser Technology, 2023, 161, 109220.
78 Guo Y X, Liu Q B.Intermetallics, 2018, 102, 78.
79 Jiang X J, Wang S Z, Fu H, et al.Materials Letters, 2022, 308, 131131.
80 Yang J, Yan X F, Wang C, et al.Surface & Coatings Technology, 2022, 446, 128757.
81 Zhang H, Liu G, Ren N N, et al.Surface and Coatings Technology, 2023, 464, 129573.
82 Ma Q, Zhao W, Shi C W, et al.Materials Characterization, 2023, 205, 113300.
83 Liang H, Miao J W, Gao B Y, et al.Surface and Coatings Technology, 2020, 400, 126214.
84 Liu H, Wang R T, Hao J B, et al.Journal of Alloys and Compounds, 2024, 976, 173124.
85 Li Z T, Jing C N, Feng Y, et al.Materials Today Communications, 2023, 35, 105800.
86 Shun T T, Hung W J.Advances in Materials Science and Engineering, 2018, 2018, 5826467.
87 Xin S S, Wang Z H, Li C L, et al.Materials Reports, 2020, 34(7), 7130 (in Chinese).
信思树, 王镇华, 李春玲, 等. 材料导报, 2020, 34(7), 7130.
88 Yao H W, Lu Y P, Cao Z Q, et al.Materials Reports, 2020, 34(17), 17041 (in Chinese).
姚宏伟, 卢一平, 曹志强, 等. 材料导报, 2020, 34(17), 17041.
89 Zhang L, Ji Y, Yang B.Materials, 2023, 16(17), 5747.
90 Zhang B, Cai Y, Mu W D, et al.Journal of Alloys and Compounds, 2024, 970, 172502.
91 Lu Z P, Jiang S H, He J Y, et al.Acta Metallurgica Sinica, 2016, 52(10), 1183 (in Chinese).
吕昭平, 蒋虽合, 何骏阳, 等. 金属学报, 2016, 52(10), 1183.
92 Tao Y, Ma Q S, Lu Y Y, et al.Surface and Coatings Technology, 2023, 472, 129919.
93 Liu Y F, Cui X F, Jin G, et al.Materials Chemistry and Physics, 2024, 320, 129469.
94 Archard J F.Journal of Applied Physics, 1953, 24(8), 981.
95 Sun Z L, Zhang M Y, Wang G Q, et al.Coatings, 2021, 11(2), 155.
96 Shu F Y, Wu L, Zhao H Y, et al.Materials Letters, 2018, 211, 235.
97 Zhang R, Gu X Y, Gong H T, et al.Journal of Materials Research and Technology, 2022, 21, 3357.
98 Delgado-Alvarado C, Sundaram P A.Corrosion Science, 2007, 49(9), 3732.
99 Sharma A, Oh M C, Kim J T, et al.Journal of Alloys and Compounds, 2020, 830, 154620.
100 Peng X, Zhang Y, Zhao J, et al.Electrochimica Acta, 2006, 51(23), 4922.
101 Kim D, Kim K, Park J, et al.International Journal of Electrochemical Science, 2023, 18(4), 100074.
102 Yang Z, Huang H L.Materials Chemistry and Physics, 2023, 295, 127217.
103 Wang H, Ning C Y, Huang Y H, et al.Optics and Lasers in Engineering, 2017, 90, 179.
104 Cheng T C, Huang H L, Huang G L.Journal of Electroanalytical Che-mistry, 2022, 927, 116984.
105 Sun Q, Yu Y M, Wang F.Materials Letters, 2023, 334, 133703.
106 Ma Q, Zhang H, Lv Y X, et al.Ceramics International, 2023, 49(22), 36416.
107 Zhang S, Qi W J, Zhang R.Materials Letters, 2023, 345, 134490.
108 Ma M Y, Han A H, Zhang Z J, et al.Corrosion Science, 2021, 185, 109417.
109 Zhao P, Li J, Zhang Y, et al.Journal of Alloys and Compounds, 2021, 862, 158405.
110 Cui Y, Shen J Q, Hu S S, et al.Coatings, 2020, 10(11), 1136.
111 Cai Y C, Zhu L S, Cui Y, et al.Materials Research Express, 2019, 6(12), 126552.
112 Chang F, Cai B J, Zhang C, et al.Surface and Coatings Technology, 2019, 359, 132.
113 Jiang J, Hou W T, Feng X M, et al.Surface and Coatings Technology, 2023, 464, 129577.
114 Hua N B, Wang W J, Wang Q T, et al.Journal of Alloys and Compounds, 2021, 861, 157997.
115 Zhang X Z, Sun Y C, Yu G X, et al.Optics & Laser Technology, 2023, 158, 108838.
116 Cui Z D, Zhu J M, Jiang H, et al.Acta Metallurgica Sinica, 2022, 58(7), 837 (in Chinese).
崔振铎, 朱家民, 姜辉, 等. 金属学报, 2022, 58(7), 837.
117 Li Y Z, Shi Y.Optics & Laser Technology, 2021, 134, 106632.
118 Li Y Y, Liu H, Liu X H, et al.Optik, 2023, 283, 170899.
119 Chen S Y, Yang X, Dahmen K A, et al.Entropy, 2014, 16(2), 870.
120 Chen T T, Shi Y J, Ren Y, et al.Corrosion Science, 2024, 227, 111690.
121 Wan H X, Song D D, Shi X L, et al.Journal of Materials Science & Technology, 2021, 60, 197.
122 Liu Z C, Kong D J.Corrosion Science, 2024, 227, 111766.
123 Wu H, Zhang S, Wu C L, et al.Surface and Coatings Technology, 2023, 460, 129425.
124 Liu H, Wang R T, Gao Q, et al.Materials Characterization, 2023, 206, 113449.
125 Zhang Y, Han T F, Xiao M, et al.Optik, 2019, 198, 163316.
126 Zhou J L, Cheng Y H, Wan Y X, et al.Journal of Alloys and Compounds, 2024, 984, 173819.
127 Cui C, Wu M P, He R, et al.Surface and Coatings Technology, 2023, 467, 129726.
128 Wang W L, Kong Z H.Journal of Alloys and Compounds, 2021, 853, 156451.
129 Jin G, Cai Z B, Guan Y J, et al.Applied Surface Science, 2018, 445, 113.
130 Yang C M, Liu X B, Liu Y F, et al.Tribology International, 2023, 188, 108868.
131 Zhou E Z, Qiao D X, Yang Y, et al.Journal of Materials Science & Technology, 2020, 46, 201.
132 Liu D Z, Zhao J, Li Y, et al.Applied Sciences, 2020, 10(1), 49.
133 Shang F M, Chen S Y, Zhang C Y, et al.Optics & Laser Technology, 2021, 134, 106590.
134 Lu J, Weng Y T, Wan A H, et al.Journal of Thermal Spray Technology, 2023, 32(7), 2250.
135 Liu H, Sun S F, Zhang T, et al.Surface and Coatings Technology, 2021, 405, 126522.
136 Zhang G S, Zhang Z J, Xuan J Y, et al.Journal of Materials Research and Technology, 2024, 29, 4216.
137 Gu Z, Mao P, Gou Y F, et al.Surface and Coatings Technology, 2020, 402, 126303.
138 Cai Y C, Zhu L S, Cui Y, et al.Applied Surface Science, 2021, 543, 148794.
139 Liu H, Liu J, Chen P J, et al.Optics & Laser Technology, 2019, 118, 140.
140 Shang X J, Liu Q B, Guo Y X, et al.Journal of Materials Research and Technology, 2022, 21, 2076.
141 Zhao T, Wang L, Zhang S, et al.Surface and Coatings Technology, 2023, 472, 129940.
142 Zhu Z X, Liu X B, Liu Y F, et al.Wear, 2023, 512-513, 204533.
143 Chen L, Wang Y Y, Hao X H, et al.Vacuum, 2021, 183, 109823.
144 Zhao Y, Wu M F, Hou J C, et al.Journal of Alloys and Compounds, 2022, 920, 165888.
145 Zhang M N, Zhou X L, Yu X N, et al.Surface and Coatings Technology, 2017, 311, 321.
146 Ren Z Y, Hu Y L, Tong Y G, et al.Tribology International, 2023, 182, 108366.
147 Li X F, Feng Y H, Liu B, et al.Journal of Alloys and Compounds, 2019, 788, 485.
148 Hao X H, Liu H X, Zhang X W, et al.Applied Surface Science, 2023, 626, 157240.
149 Guo K T, Sun Y N, Cheng W J.Materials Letters, 2024, 355, 135398.
150 Wang H J, Zhang W, Peng Y B, et al.Coatings, 2020, 10(3), 300.
151 Zhao Z S, Wu M P, Miao X J, et al.Heat Treatment of Metals, 2022, 47(4), 251 (in Chinese).
赵子硕, 武美萍, 缪小进, 等. 金属热处理, 2022, 47(4), 251.
152 Liang H, Liu J H, Sun L K, et al.Coatings, 2023, 13(10), 1744.
153 Zhang M N, Wang D F, He L J, et al.Optics & Laser Technology, 2022, 149, 107845.
154 Xiang D D, Liu Y S, Yu T B, et al.Journal of Materials Research and Technology, 2024, 28, 911.
155 Guo Y Q, Zeng Y D, Guo Z H, et al.Materials Today Communications, 2023, 37, 107152.
156 Gao Z N, Wang L L, Wang Y N, et al.Journal of Alloys and Compounds, 2022, 903, 163905.
157 Wang Q, Zhang L, Li Q, et al.Surface Technology, 2023, 52(6), 166 (in Chinese).
王茜, 张亮, 李倩, 等. 表面技术, 2023, 52(6), 166.
158 Chen J, Yao Z H, Yao J H, et al.Aeronautical Manufacturing Technology, 2021, 64(12), 36 (in Chinese).
陈健, 姚喆赫, 姚建华, 等. 航空制造技术, 2021, 64(12), 36.
159 Zhao Y, Wu M F, Jiang P C, et al.Journal of Materials Research and Technology, 2022, 20, 1908.
160 Wen X, Cui X F, Jin G, et al.Journal of Alloys and Compounds, 2020, 835, 155449.
161 Jiang L P, Cui X F, Jin G, et al.Journal of Materials Science & Technology, 2023, 152, 220.
162 Cui Z Q, Qin Z, Dong P, et al.Materials Letters, 2020, 259, 126769.
163 Li M Y, Zhang Q, Han B, et al.Journal of Alloys and Compounds, 2020, 816, 152626.
164 Zhang Q, Li M Y, Han B, et al.Journal of Alloys and Compounds, 2021, 884, 160989.
165 Li M K, Huang K P, Yi X M.Coatings, 2023, 13(6), 1117.
166 Deng D W, Jiang H, Li Z H, et al.Laser & Optoelectronics Progress, 2023, 60(17), 232 (in Chinese).
邓德伟, 江浩, 李振华, 等. 激光与光电子学进展, 2023, 60(17), 232.
167 Alam M K, Urbanic R J, Nazemi N, et al.The International Journal of Advanced Manufacturing Technology, 2018, 94, 397.
168 Long H Y, Li T K, Shi H J, et al.Coatings, 2023, 13(7), 1216.
169 Li Z, Taheri M, Torkamany P, et al.Vacuum, 2024, 219, 112749.
170 Wang H L, Liu Q B, Guo Y X, et al.Intermetallics, 2019, 115, 106613.
171 Cai J M, Mi G B, Gao F, et al.Journal of Materials Engineering, 2016, 44(8), 1.
[1] 姚洁丽, 伍小波, 刘紫鹏, 唐繁荣, 廖常平. 锂离子电池负极极片干燥开裂机理与影响因素研究综述[J]. 材料导报, 2025, 39(9): 24070200-7.
[2] 王健, 张永, 高津. 风电机组叶片涂层沙蚀效应的风洞试验研究[J]. 材料导报, 2025, 39(9): 23120009-5.
[3] 韩帅文, 朱可晟, 刘长洋, 刘子良, 卞刘振, 杨礼林. 固体氧化物电池金属连接体锰钴涂层材料研究进展[J]. 材料导报, 2025, 39(8): 23100253-6.
[4] 刘同旭, 王子君, 张新颖, 陈晓明, 朱广林, 郭策安. 电火花沉积工艺的研究现状和发展趋势[J]. 材料导报, 2025, 39(8): 24030203-9.
[5] 俞伟元, 景瑞, 董鹏飞, 吴保磊, 李扬, 强潇. 高速激光熔覆Fe基非晶涂层裂纹及组织分析[J]. 材料导报, 2025, 39(7): 24030107-6.
[6] 叶利亚, 陈宏飞, 杨光, 高彦峰. V2O5对β-(Ni,Pt)Al涂层热腐蚀抗性的影响[J]. 材料导报, 2025, 39(7): 24030041-4.
[7] 高峰, 郭策安, 张健. 身管内壁铬钽及其合金涂层研究进展[J]. 材料导报, 2025, 39(7): 24010200-8.
[8] 范锡宇, 赵珍, 马剑平, 周雪琴. 多层结构绿色植被高光谱伪装材料的设计与制备[J]. 材料导报, 2025, 39(7): 24030086-8.
[9] 王喆锦, 王丽爽, 麻忠宇, 董会, 姚建洮, 周勇. 高温热暴露对等离子喷涂YSZ孔隙结构和力学性能的影响[J]. 材料导报, 2025, 39(4): 23110217-7.
[10] 张业飞, 江海涛, 田世伟, 张思远, 李冲. TiAl基合金高温防护及热障涂层体系研究进展[J]. 材料导报, 2025, 39(4): 24020147-10.
[11] 雷经发, 赵晨霞, 刘涛, 沈朝阳, 李思悦. 激光熔覆Inconel 625合金高温高应变率下的力学行为及本构模型[J]. 材料导报, 2025, 39(4): 23120263-7.
[12] 蒋曜年, 刘欢, 钟镇涛, 何泽乾, 毛卫国, 戴翠英, 张有为, 刘平桂. SiCN@Fe复合吸波涂层高温原位拉伸测试分析[J]. 材料导报, 2025, 39(3): 23050156-5.
[13] 温强, 李向成, 花银群, 关庆丰, 蔡杰. 强流脉冲电子束表面改性技术及其在热障涂层改性中的研究进展[J]. 材料导报, 2025, 39(3): 23090070-11.
[14] 张泽疆, 李新梅, 朱春金, 李航, 杨定力. 纳米TiB2对CoCrFeNiSi高熵合金涂层耐磨与耐蚀性能的影响[J]. 材料导报, 2025, 39(3): 23090210-9.
[15] 宋少龙, 王晓地, 张哲, 任学冲, 栾本利. 高熵合金高周和低周疲劳行为研究进展[J]. 材料导报, 2025, 39(3): 23100148-12.
[1] JIN Qinglin, WANG Yang, CAO Lei, SONG Qunling. Effect of Nitriding in Mushy Zone on the Nitrogen Content and Solidification Transformation of Cr10Mn9Ni0.7 Alloy[J]. Materials Reports, 2018, 32(4): 579 -583 .
[2] WANG Shengmin, ZHAO Xiaojun, HE Mingyi. Research Status and Development of Mechanical Plating[J]. Materials Reports, 2017, 31(5): 117 -122 .
[3] HE Yuandong, SUN Changzhen, MAO Weiguo, MAO Yiqi, ZHANG Honglong, CHEN Yanfei, PEI Yongmao, FANG Daining. Measurement of Transverse Piezoelectric Coefficients of Pb(Zr0.52Ti0.48)O3 Thin Films by a Mechano-electrical Multiphysics Coupling, Bulge Test Method[J]. Materials Reports, 2017, 31(15): 139 -144 .
[4] TAO Lei, ZHENG Yunwu,DI Mingwei, ZHANG Yanhua, ZHENG Zhifeng. Preparation of Porous Carbon Nanofiber from Liquid Phenolic Resin and Its Characterization[J]. Materials Reports, 2017, 31(10): 101 -106 .
[5] SU Lan, ZHANG Chubo, WANG Zhen, MI Zhenli. Finite Element Simulation of Electromagnetic Induction Heating in Hot Metal Gas Forming[J]. Materials Reports, 2017, 31(24): 182 -177 .
[6] QI Yaping, LUO Faliang, WANG Kezhi, SHEN Zhiyuan, WU Xuejian, WANG Diran. Effect of TMC-300 on the Performance of PLLA/PPC Alloy[J]. Materials Reports, 2018, 32(10): 1672 -1677 .
[7] LIU Huan, HUA Zhongsheng, HE Jiwen, TANG Zetao, ZHANG Weiwei, LYU Huihong. Indium Recovery from Waste Indium Tin Oxide: a Technological Review[J]. Materials Reports, 2018, 32(11): 1916 -1923 .
[8] DU Min, SONG Dian, XIE Ling, ZHOU Yuxiang, LI Desheng, ZHU Jixin. Electrospinning in Rechargeable Ion Batteries for High Efficient Energy Storage[J]. Materials Reports, 2018, 32(19): 3281 -3294 .
[9] LIU Xiao, XU Qian, LAI Guanghong, GUAN Jianan, XIA Chunlei, WANG Ziming, CUI Suping. Application Performances and Mechanism of Polycarboxylic Acid in Different Comb-bonded Structures in High-performance Concrete[J]. Materials Reports, 2018, 32(22): 4011 -4015 .
[10] ZHANG Di, YANG Di, XU Cui, ZHOU Riyu, LI Hao, LI Jing, WANG Peng. Study on Mechanism of Highly Effective Adsorption of Bisphenol F by Reduced Graphene Oxide[J]. Materials Reports, 2019, 33(6): 954 -959 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed