Please wait a minute...
材料导报  2021, Vol. 35 Issue (9): 9033-9040    https://doi.org/10.11896/cldb.19110205
  轻质合金 |
合金化对Mg-Ni系合金储氢性能的影响:综述
卢祺, 黄锋*, 郭逊
武汉理工大学现代汽车零部件技术湖北省重点实验室,武汉 430070
Effect of Alloying on Hydrogen Storage Properties of Mg-Ni System Alloys: a Review
LU Qi, HUANG Feng*, GUO Xun
Hubei Key Laboratory of Advanced Technology for Automotive Components, Wuhan University of Technology, Wuhan 430070, China
下载:  全 文 ( PDF ) ( 14656KB ) 
输出:  BibTeX | EndNote (RIS)      
摘要 Mg基合金具有储氢量大、质量轻、资源丰富、价格低廉等特点,但其较高的放氢温度和较慢的吸放氢速率是限制其应用的关键问题。合金化是改善Mg基储氢合金吸放氢热力学和动力学的有效方法,在纯Mg中添加Ni会形成Mg2Ni,其吸放氢热力学与动力学均会得到明显改善,但仍不够理想,有待进一步提高。本文就合金化对Mg-Ni系合金储氢性能的影响进行了综述,整理了各合金元素的添加对Mg-Ni系合金吸放氢热力学与动力学的影响,最后对Mg-Ni系合金的发展进行了展望。
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
卢祺
黄锋
郭逊
关键词:  Mg-Ni系合金  合金化  储氢性能    
Abstract: Mg-based alloys have the characteristics of high hydrogen storage capacity, light weight, abundant resources and low price, but their high hydrogen release temperature and slow hydrogen absorption and desorption rate are the key issues that limit their application. Alloying is an effective method to improve the thermodynamics and kinetics of hydrogen absorption and desorption of Mg-based alloys. The addition of Ni to pure Mg will form Mg2Ni, and the thermodynamics and kinetics of hydrogen absorption and desorption will be significantly improved, but it is still not ideal and needs to be further improved. In this paper, the effects of alloying on the hydrogen storage performance of Mg-Ni alloys are reviewed. The effects of the addition of various alloying elements on the thermodynamics and kinetics of hydrogen absorption and desorption of Mg-Ni alloys are discussed. Finally, the prospect of research on Mg-Ni alloys is presented.
Key words:  Mg-Ni system alloys    alloying    hydrogen storage property
               出版日期:  2021-05-10      发布日期:  2021-05-31
ZTFLH:  TG139+.7  
基金资助: 国家自然科学基金(51501136)
通讯作者:  huangfeng@whut.edu.cn   
作者简介:  卢祺,2018年6月毕业于武汉理工大学汽车工程学院,获得工学学士学位。现为武汉理工大学汽车工程学院硕士研究生,在黄锋副教授的指导下进行研究。目前主要研究领域为镁基储氢合金。
黄锋,武汉理工大学汽车工程学院副教授,硕士研究生导师。获东北大学冶金工程学士学位,哈尔滨工业大学材料加工工程硕士、博士学位,武钢博士后,南洋理工大学访问学者。Modern Materials Science and Technology编委。主持国家自然科学基金青年基金1项,国家重点实验室开放课题2项,事业单位横向委托2项,企业横向委托1项,参与国家自然基金、重大研发计划、校企合作等项目多项。在International Journal of Heat and Mass Transfer、Separation and Purification Technology、Materials Science in Semiconductor Processing、Journal of Crystal Growth、Vacuum等重要学术期刊上共发表学术论文30余篇,其中SCI论文20余篇。授权国家发明专利5项,受理6项。
引用本文:    
卢祺, 黄锋, 郭逊. 合金化对Mg-Ni系合金储氢性能的影响:综述[J]. 材料导报, 2021, 35(9): 9033-9040.
LU Qi, HUANG Feng, GUO Xun. Effect of Alloying on Hydrogen Storage Properties of Mg-Ni System Alloys: a Review. Materials Reports, 2021, 35(9): 9033-9040.
链接本文:  
http://www.mater-rep.com/CN/10.11896/cldb.19110205  或          http://www.mater-rep.com/CN/Y2021/V35/I9/9033
1 Shao H, Liu T, Wang Y, et al. Journal of Alloys and Compounds,2008,465(1-2),527.
2 Tien H Y, Tanniru M, Wu C Y, et al. Scripta Materialia,2010,62(5),274.
3 Jia Y, Sun C, Shen S, et al. Renewable and Sustainable Energy Reviews,2015,44,289.
4 Grosdidier T, Fundenberger J J, Zou J X, et al. International Journal of Hydrogen Energy,2015,40(47),16985.
5 Ding X, Chen R, Chen X, et al. International Journal of Hydrogen Energy,2018,43(34),16617.
6 Lillo-Ródenas M A, Aguey-Zinsou K F, Cazorla-Amoros D, et al. The Journal of Physical Chemistry C,2008,112(15),5984.
7 Su X. The hydrogen storage properties of Mg-Al-Ti alloys. Master's Thesis, Guangxi University, China,2014(in Chinese).
苏鑫.Mg-Al-Ti基合金储氢性能研究.硕士学位论文,广西大学,2014.
8 Lu Y S. Study on thermodynamic destabilization and cycle performance of Mg-based multi-hydrogen storage system alloys. Ph.D. Thesis, South China University of Technology, China,2017(in Chinese).
卢彦杉.Mg基多元储氢合金体系的热力学去稳定和循环性能研究.博士学位论文,华南理工大学,2017.
9 Crivello J C, Denys R V, Dornheim M, et al. Applied Physics A,2016,122(2),85.
10 Zeng K. Preparation and hydrogen storage properties of Mg-Al/graphene composites. Master's Thesis, Guangxi University, China,2017(in Chinese).
曾科.Mg-Al/石墨烯复合材料的制备及储氢性能的研究.硕士学位论文,广西大学,2017.
11 Zhang X Y. Research on multi-component synergistic magnesium-based hydrogen storage materials. Master's Thesis, Anhui University of Technology, China,2018(in Chinese).
张雪洋.多元协同作用镁基储氢材料研究.硕士学位论文,安徽工业大学,2018.
12 Wang H, Ouyang L, Zeng M, et al. International Journal of Hydrogen Energy,2004,29(13),1389.
13 Ouyang L Z, Wang H, Chung C Y, et al. Journal of Alloys and Compounds,2006,422(1-2),58.
14 Liang G, Huot J, Boily S, et al. Journal of Alloys and Compounds,1999,282(1-2),286.
15 Wei P, Huang W, Ding X, et al. Dalton Transactions,2018,47(25),8418.
16 Si T, Ma Y, Li Y, et al. Materials Chemistry and Physics,2017,193,1.
17 Ma Y. Structure and hydrogen storage performance of multi-component Mg2Ni alloy. Master's Thesis, Anhui University of Technology, China,2017(in Chinese).
马勇.多组元Mg2Ni型合金的结构与储氢性能.硕士学位论文,安徽工业大学,2017.
18 Zhang Y, Zhang H, Ding X, et al. Progress in Natural Science: Materials International,2018,28(4),464.
19 Ouyang L Z, Cao Z J, Wang H, et al. International Journal of Hydrogen Energy,2013,38(21),8881.
20 Zhong H, Xu J, Jiang C, et al. Transactions of Nonferrous Metals Society of China,2018,28(12),2470.
21 Kadir K, Sakai T, Uehara I. Journal of Alloys and Compounds,1997,257(1-2),115.
22 Zhang L, Du W, Han S, et al. Electrochimica Acta,2015,173,200.
23 Tai Y, Yuan Z, Bu W, et al. Materials & Design,2016,93,46.
24 Zhang Q A, Zhang L X, Wang Q Q. Journal of Alloys and Compounds,2013,551,376.
25 Chen R, Ding X, Chen X, et al. Journal of Power Sources,2018,401,186.
26 Yuan J G, Xing N, Wu Y. International Journal of Hydrogen Energy,2017,42(9),6118.
27 Xiong Y, Ba J, Qing W, et al. Journatl of Plasma and Fusion Research Series,2013,10,94.
28 Song W, Li J, Zhang T, et al. Journal of Power Sources,2014,245,808.
29 Si T Z, Liu D M, Zhang Q A. International Journal of Hydrogen Energy,2007,32(18),4912.
30 Ma Z, Li B, Ren H, et al. Materials Sciences and Applications,2011,2(3),141.
31 Sun D, Enoki H, Gingl F, et al. Journal of Alloys and Compounds,1999,285(1-2),279.
32 Song M Y, Kwon S N, Bae J S, et al. International Journal of Hydrogen Energy,2008,33(6),1711.
33 Li Y, Yang J, Luo L, et al. International Journal of Hydrogen Energy,2019,44(14),7371.
34 Dong X, Yang L, Pang Y, et al. Journal of Wuhan University of Techno-logy-Material Science Edition,2018,33(2),476.
35 Song W J. Phase formation mechanism and hydrogen absorption and desorption performance of Mg-Ni-Y alloy. Ph.D. Thesis, Northwestern Polytechnical University, China,2016(in Chinese).
宋文杰.Mg-Ni-Y合金的相形成机制与吸放氢性能研究.博士学位论文,西北工业大学,2016.
36 Zhang Y, Li Y, Shang H, et al. Progress in Natural Science: Materials International,2018,28(3),259.
37 Li Z, Li S, Yuan Z, et al. Transactions of Nonferrous Metals Society of China,2019,29(5),1057.
38 Zhang B, Lv Y, Yuan J, et al. Journal of Alloys and Compounds,2017,702,126.
39 Takahashi Y, Yukawa H, Morinaga M. Journal of Alloys and Compounds,1996,242(1-2),98.
40 Wei L T. Structures and bonding feature of Ti substituted Mg2Ni and Mg2NiH4:first principles calculations. Master's Thesis, Guangxi University, China,2015(in Chinese).
韦柳婷.第一性原理研究Ti替代Mg2Ni和Mg2NiH4的结构与电子特性.硕士学位论文,广西大学,2015.
41 Hou X J, Kou H C, Zhang T B, et al. Materials Science Forum,2013,743,44.
42 Zeng Y, Fan K, Li X, et al. International Journal of Hydrogen Energy,2010,35(19),10349.
43 Li Y, Sun G, Mi Y. American Journal of Analytical Chemistry,2016,7(1),67.
44 Song M Y, Yim C D, Kwon S N, et al. International Journal of Hydrogen Energy,2008,33(1),87.
45 Khrussanova M, Mandzhukova T, Grigorova E, et al. Journal of Materials Science,2007,42(10),3338.
46 Li Y, Zhou G, Fang F, et al. Acta Materialia,2011,59(4),1829.
47 Liu Y, Zhong K, Luo K, et al. Journal of the American Chemical Society,2009,131(5),1862.
48 Kissinger H E. Analytical Chemistry,1957,29(11),1702.
49 Zhang Y, Li Y, Shang H, et al. International Journal of Hydrogen Energy,2017,42(35),22379.
50 Gu H, Zhu Y, Li L. International Journal of Hydrogen Energy,2009,34(6),2654.
51 Li Q, Lin Q, Chou K C, et al. Journal of Materials Science,2004,39(1),61.
52 Yim C D, You B S, Na Y S, et al. Catalysis Today,2007,120(3-4),276.
53 Delchev P, Solsona P, Drenchev B, et al. Journal of Alloys and Compounds,2005,388(1),98.
[1] 王玉娇, 江海涛, 张韵, 王盼盼, 于博文, 徐哲. 镁合金海水电池阳极材料电化学性能研究进展[J]. 材料导报, 2021, 35(9): 9041-9048.
[2] 张朝磊, 邵洙浩, 李戬, 王文军, 蒋波. 铌微合金化技术在中高碳钢中的应用现状与发展[J]. 材料导报, 2021, 35(5): 5102-5106.
[3] 陈健, 顾晨宇, 杨宁, 邱天, 徐杰, 陈翔宇, 朱帅, 焦齐统, 潘炜, 刘晶晶. LaNi5.5Sn1.5-C-Si合金优异的长期吸/放氢循环性能[J]. 材料导报, 2021, 35(4): 4112-4117.
[4] 王诗蒙, 杨文朋, 崔红保, 郭学锋, 孙尧. Mg-Zn系合金沉淀硬化研究进展[J]. 材料导报, 2020, 34(Z1): 312-315.
[5] 徐翔宇, 郑勇, 吴昊, 丁青军, 王丽珠, 欧阳杰. 无磁金属陶瓷的研究进展[J]. 材料导报, 2020, 34(9): 9064-9068.
[6] 李世磊, 胡平, 段毅, 左烨盖, 邢海瑞, 李辉, 邓洁, 冯鹏发, 王快社, 胡卜亮. 掺杂方式对钼合金组织与力学性能影响的研究进展[J]. 材料导报, 2020, 34(9): 9132-9142.
[7] 马启慧,王清,董闯. Co-Al-W基高温合金发展概述[J]. 材料导报, 2020, 34(3): 3157-3164.
[8] 崔田路, 曹中秋, 贾中秋, 于佳蕊, 徐欢, 张轲, 王艳. 块体纳米晶Fe-50Cu合金在H2SO4溶液中的电化学腐蚀行为[J]. 材料导报, 2020, 34(20): 20096-20102.
[9] 黄章, 杜传治, 方金林, 于浩, 黎淑英, 宋成浩, 段晓妮. Nb微合金化对Q500MPa级热轧H型钢组织和性能的影响[J]. 材料导报, 2020, 34(14): 14175-14180.
[10] 姚万鹏, 曹福勇, 李焰, 齐建涛. 轻合金-空气电池的研究进展[J]. 材料导报, 2020, 34(13): 13058-13067.
[11] 苏小虎, 栗卓新, 马思鸣, 李红, 张天理, KIM Hee Jin. 氧含量及夹杂物对高强钢金属芯焊丝E120C-K4熔敷金属冲击韧性的影响[J]. 材料导报, 2020, 34(11): 11049-11052.
[12] 陈爱华, 俞坚钢, 陈国平, 唐诤溱, 王鹏举. 合金化元素对铜基块状非晶合金性能影响的研究进展[J]. 材料导报, 2019, 33(Z2): 415-418.
[13] 刘印, 王昌, 于振涛, 盖晋阳, 曾德鹏. 医用镁合金的力学性能研究进展[J]. 材料导报, 2019, 33(z1): 288-292.
[14] 赵曦, 于振涛, 郑继明, 余森, 王昌. 合金元素影响镁合金弹性性能的第一性原理计算研究[J]. 材料导报, 2019, 33(z1): 293-296.
[15] 张哲轩, 周再峰, 山泉, 李祖来, 蒋业华, 张飞. 表面钨合金化对高铬铸铁组织和硬度的影响[J]. 材料导报, 2019, 33(z1): 362-365.
[1] Wei ZHOU, Xixi WANG, Yinlong ZHU, Jie DAI, Yanping ZHU, Zongping SHAO. A Complete Review of Cobalt-based Electrocatalysts Applying to Metal-Air Batteries and Intermediate-Low Temperature Solid Oxide Fuel Cells[J]. Materials Reports, 2018, 32(3): 337 -356 .
[2] Yanzhen WANG, Mingming CHEN, Chengyang WANG. Preparation and Electrochemical Properties Characterization of High-rate SiO2/C Composite Materials[J]. Materials Reports, 2018, 32(3): 357 -361 .
[3] Yimeng XIA, Shuai WU, Feng TAN, Wei LI, Qingmao WEI, Chungang MIN, Xikun YANG. Effect of Anionic Groups of Cobalt Salt on the Electrocatalytic Activity of Co-N-C Catalysts[J]. Materials Reports, 2018, 32(3): 362 -367 .
[4] Dongyong SI, Guangxu HUANG, Chuanxiang ZHANG, Baolin XING, Zehua CHEN, Liwei CHEN, Haoran ZHANG. Preparation and Electrochemical Performance of Humic Acid-based Graphitized Materials[J]. Materials Reports, 2018, 32(3): 368 -372 .
[5] Huanchun WU, Fei XUE, Chengtao LI, Kewei FANG, Bin YANG, Xiping SONG. Fatigue Crack Initiation Behaviors of Nuclear Power Plant Main Pipe Stainless Steel in Water with High Temperature and High Pressure[J]. Materials Reports, 2018, 32(3): 373 -377 .
[6] Miaomiao ZHANG,Xuyan LIU,Wei QIAN. Research Development of Polypyrrole Electrode Materials in Supercapacitors[J]. Materials Reports, 2018, 32(3): 378 -383 .
[7] Qingshun GUAN,Jian LI,Ruyuan SONG,Zhaoyang XU,Weibing WU,Yi JING,Hongqi DAI,Guigan FANG. A Survey on Preparation and Application of Aerogels Based on Nanomaterials[J]. Materials Reports, 2018, 32(3): 384 -390 .
[8] Yunzi LIU,Wei ZHANG,Zhanyong SONG. Technological Advances in Preparation and Posterior Treatment of Metal Nanoparticles-based Conductive Inks[J]. Materials Reports, 2018, 32(3): 391 -397 .
[9] Bingwei LUO,Dabo LIU,Fei LUO,Ye TIAN,Dongsheng CHEN,Haitao ZHOU. Research on the Two Typical Infrared Detection Materials Serving at Low Temperatures: a Review[J]. Materials Reports, 2018, 32(3): 398 -404 .
[10] 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 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed