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材料导报  2021, Vol. 35 Issue (z2): 428-432    
  金属与金属基复合材料 |
高能球磨法制备微米银片的工艺研究
唐卫岗1, 胡岭1, 黄世盛1, 陈融1, 郭冰2, 沈杭燕2
1 杭州华光焊接新材料股份有限公司,杭州 311112
2 中国计量大学材料与化学学院,杭州 310018
Study on the Process of Preparing Micron Silver Flakes by High Energy Ball Mill
TANG Weigang1, HU Ling1, HUANG Shisheng1, CHEN Rong1, GUO Bing2, SHEN Hangyan2
1 Hangzhou Huaguang Advanced Welding Materials Co., Ltd, Hangzhou 311112, China
2 College of Materials and Chemistry, China Jiliang University, Hangzhou 310018, China
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摘要 采用高能球磨法将微细银粉制备成微米级的片状银粉,并探究了不同的球磨参数对于银粉形貌和粒径的影响。实验发现,球磨时间越长,银粉的成片性较好,粒径越大。且球磨转速、球料比以及球磨介质无水乙醇量的选择至关重要,过低或过高都会影响球磨效率,使得银粉的成片性变差。当球料比为10∶1,转速250 r·min-1,无水乙醇添加量为3 mL时,球磨制备的银粉团聚少,成片性好,银粉粒径为2~6 μm。
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唐卫岗
胡岭
黄世盛
陈融
郭冰
沈杭燕
关键词:  高能球磨  球磨参数  微米银粉  片状银粉    
Abstract: Micron-sized flake silver powders were successfully prepared by high-energy ball milling method using 1 μm silver particles as raw material. The effects of ball milling parameters on the morphology and particle size of silver powders were investigated. The results show that the longer the ball milling time is used, the better the flake-forming property and the larger the particle size of the silver powder are obtained. The ball milling efficiency and the flake-forming property of the silver powders are also affected by the ball milling speed, the ball-to-material ratio and the concentration of the ball milling medium. When the ball-to-material ratio is 10∶1, the ball milling speed is 250 r·min-1, the ball milling time is 24 h, and the amount of anhydrous ethanol is 3 mL, the silver powders prepared by ball milling have less agglomeration and better flake-forming property. The particle size of the silver powder is 2—6 μm.
Key words:  high-energy ball milling    ball milling parameters    micron-sized silver    flake silver
                    发布日期:  2021-12-09
ZTFLH:  TB383.1  
基金资助: 浙江省科技计划项目(2018C01123)
通讯作者:  shenhangyan@cjlu.edu.cn   
作者简介:  唐卫岗,入职杭州华光焊接新材料股份有限公司近20年,参与了华光新材多项重大装备的设计开发,为公司钎料产业化水平提升做出重要贡献,作为公司研究院执行院长,带领团队开展了一系列钎料新产品和钎料装备的开发。重视钎焊整体解决方案的研究,在开发钎料新产品的同时,开展产业化装备和钎焊设备的设计开发,是公司多项发明和实用新型专利的主要发明人,2020年获得中国机械工业科学技术特等奖。
沈杭燕,2005年博士毕业于日本东北大学金属冶金学专业。2006年至今在中国计量大学材料与化学学院工作,现为中国计量大学教授,期间曾于2012年赴墨尔本大学做高级访问学者。在国内外学术期刊上发表论文50余篇,申请国家发明专利20余项,其中授权10项。研究领域为金属焊接材料,电子封装材料和纳米材料等。
引用本文:    
唐卫岗, 胡岭, 黄世盛, 陈融, 郭冰, 沈杭燕. 高能球磨法制备微米银片的工艺研究[J]. 材料导报, 2021, 35(z2): 428-432.
TANG Weigang, HU Ling, HUANG Shisheng, CHEN Rong, GUO Bing, SHEN Hangyan. Study on the Process of Preparing Micron Silver Flakes by High Energy Ball Mill. Materials Reports, 2021, 35(z2): 428-432.
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1 董维国, 陈岁元, 张继良,等. 材料与冶金学报, 2002, 1(3), 171.
2 杨振国. 印制电路信息, 2010(1), 8.
3 闫方存. 球形银粉、有机载体和正银浆料制备及性能研究. 硕士学位论文, 昆明理工大学, 2016.
4 张继国. 片状银粉的制备工艺研究. 硕士学位论文, 华中科技大学, 2015.
5 朱晓云, 郭忠诚. 中国专利, 200510011011, 2006.
6 赵汝云, 刘婀娜. 中国专利, 03125186, 2004.
7 Khayati G R, Janghorban K.Advanced Powder Technology, 2012, 23(3), 393.
8 Liang G, Huot J, Boily S, et al.Journal of Alloys and Compounds, 2000, 297(1), 261.
9 Last H R, Garrett R K.Metallurgical and Materials Transactions A, 1996, 27, 737.
10 Suryanarayana C.Progress in Materials Science, 2001, 46(1), 1.
11 Kong L B, Ma J, Zhu W, et al.Journal of Materials Science Letters, 2001, 20, 1241.
12 Hiroshi M, Junya K, Fumio S. Materials Science and Engineering: A, 2002, 332(1), 75.
13 刘睿, 刘晶. 铸造技术, 2017 (7), 48.
14 谢炜, 唐维, 匡加才, 等. 化工新型材料, 2014(10), 138.
15 殷海荣, 王明华, 章春香. 中国陶瓷, 2007(2), 48.
16 Liu S S, Sun L X, Zhang Y, et al.International Journal of Hydrogen Energy, 2009, 34(19), 8079.
17 Wei D, Shi S, Li X.Special Casting & Nonferrous Alloys, 2015, 35(6), 8.
18 韩复兴, 李小雷. 山东陶瓷, 2000 (3), 15.
19 Eskandari A, Aminzare M, Hesabi R Z, et al.Ceramics International, 2012, 38(4), 2627.
20 Zhao W F, Fang M, Wu F R, et al.Journal of Materials Chemistry, 2012 (48), 24959.
21 牟翔. 填充型导电涂料的制备与电性能的研究. 硕士学位论文, 电子科技大学, 2014.
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