| 研究生: |
許哲瑋 Che-Wei Hsu |
|---|---|
| 論文名稱: |
Mg-Ni儲氫合金之研究 |
| 指導教授: |
李勝隆
Sheng-Long Lee |
| 口試委員: | |
| 學位類別: |
碩士 Master |
| 系所名稱: |
工學院 - 機械工程學系 Department of Mechanical Engineering |
| 畢業學年度: | 94 |
| 語文別: | 中文 |
| 論文頁數: | 65 |
| 中文關鍵詞: | 儲氫合金 |
| 外文關鍵詞: | metal hydride, mg2ni |
| 相關次數: | 點閱:14 下載:0 |
| 分享至: |
| 查詢本校圖書館目錄 查詢臺灣博碩士論文知識加值系統 勘誤回報 |
由於傳統能源消耗日益增加,環境汙染問題也日趨嚴重,許多國家已積極進行新能源之開發,氫能應用也隨之受到重視,從產氫、儲氫、氫輸送至氫能應用等,世界各國均投入相當的人力與物力,其目的在尋求一高效率與低污染之氫能利用方式,本研究即著重於氫氣儲存領域的研究與開發,而在各種氫氣儲存方式研究中,金屬氫化物具有體積小、質量密度高、操作壓力低與安全性高等優點,因此被視為氫氣儲存領域之重點研究課題。其中,Mg基儲氫合金因具有儲氫量高、質量輕、原料成本低廉之優點而被視為相當有潛力之儲氫合金系統,但由於Mg蒸氣壓大,且Mg(649℃)與在儲氫應用上所需搭配之元素如Ni(1455℃)、Cu(1085℃)等元素其熔點差異甚大,因此傳統熔煉法無法成功熔配出大量高純度Mg基儲氫合金,如Mg2Ni、Mg2Cu等。因此本研究分為兩部分,第一部分研究著重於高純度Mg2Ni儲氫合金新製程開發研究,改良傳統熔煉法之缺點,利用本實驗室所開發之新製程恆IECP(專利申請中),製備高純度Mg2Ni儲氫合金。第二部分則利用IECP法所製備之Mg2Ni儲氫合金,觀察其外觀結構與微結構變化,並進行不同溫度下之吸放氫性質測試。
In recent years, there has been a dramatic research concerned with metal hydrides. Metal hydrides offer a safe alternative to storage in compressed or liquid form. Moreover, metal hydrides have the highest volumetric capacity of storage. In this point, the A2B type compound Mg2Ni is considered as one of the interesting hydrogen absorbing materials with its low weight, abundance on the earth’s crust and high hydrogen storage capacity of 3.6 mass%. However, it is thought to be impossible to produce pure Mg2Ni directly by conventional melting because of the large difference melting point and the high vapor pressure of Mg. In this paper, we propose a useful methods IECP to fabricate pure Mg2Ni. Furthermore, the microstructure of pure Mg2Ni will be observed and the storage performances obtained with pure Mg2Ni under different temperatures are reported.
[1] Züttel, A.; Wenger, P.; Rentsch, S.; Sudan, P.; Mauron, Ph.; Emmenegger,
Ch.” LiBH4 a new hydrogen storage material” Journal of Power Sources
Volume: 118, Issue: 1-2, May 25, 2003, pp. 1-7
[2] Eberle, U.; Arnold, G.; von Helmolt, R.” Hydrogen storage in metal–
hydrogen systems and their derivatives” Journal of Power Sources Volume:
154, Issue: 2, March 21, 2006, pp. 456-460
[3] David, Elena” An overview of advanced materials for hydrogen storage”
Journal of Materials Processing Tech. Volume: 162-163, Complete, May 15,
2005, pp. 169-177
[4] Sandrock, Gary” A panoramic overview of hydrogen storage alloys from a gas
reaction point of view” Journal of Alloys and Compounds Volume: 293,
Issue: 1, December 20, 1999, pp. 877-888
[5] Züttel, Andreas” Materials for hydrogen storage” Materials Today Volume:
6, Issue: 9, September, 2003, pp. 24-33
[6] Kolachev, B. A.; Ilyin, A. A.” The structural outlines of hydrogen storage
alloys” International Journal of Hydrogen Energy Volume: 21, Issue: 11-12,
November 12, 1996, pp. 975-980
[7] A. Seiler, L. Schlapbach, Th. Von Waldkirch, D. Shaltiel and F. Stucki”
Surface analysis of Mg2Ni---Mg, Mg2Ni and Mg2Cu” Journal of the Less
Common Metals, Volume 73, Issue 1, September 1, 1980, pp. 193-199
[8] Li, Qian; Chou, Kuo-Chih; Lin, Qin; Jiang, Li-Jun; Zhan, Feng” Hydrogen
absorption and desorption kinetics of Ag–Mg–Ni alloys” International
Journal of Hydrogen Energy Volume: 29, Issue: 8, July, 2004, pp. 843-849
[9] S. Ono, Y. Ishido, E. Akiba, K. Jindo, Y. Sawada, I. Kitagawa and T.
Kakutani” The effect of CO2, CH4, H2O and N2 on Mg---Ni alloys as hydrogen
transporting media” International Journal of Hydrogen Energy, Volume:11,
Issue 6, 1986, pp. 381-387
[10] Varin, R.A.; Czujko, T.” The effect of atomic volume on the hydrogen
storage capacity of hexagonal metals/intermetallics” Scripta Materialia
Volume: 46, Issue: 7, April 11, 2002, pp. 531-535
[11] Malinova, T.; Guo, Z.X.”Artificial neural network modelling of hydrogen
storage properties of Mg-based alloys” Materials Science and Engineering:
A Volume: 365, Issue: 1-2, January 25, 2004, pp. 219-227
[12] Benjamin J.S. Metallurgical Transactions Volume:10, 1970, p. 2943
[13] Sundaresan R.; Frose F.H. Journal of Metals Volume:8, 1987, p.22
[14] Liang, G.; Boily, S.; Huot, J.; Van Neste, A.; Schulz, R.” Mechanical
alloying and hydrogen absorption properties of the Mg–Ni system” Journal
of Alloys and Compounds Volume: 267, Issue: 1-2, March 6, 1998, pp. 302-306
[15] Song, Myoung Youp” Effects of mechanical alloying on the hydrogen storage
characteristics of Mg−xwt% Ni(x = 0, 5, 10, 25 and 55) mixtures”
International Journal of Hydrogen Energy Volume: 20, Issue: 3, March, 1995,
pp. 221-227
[16] Aymard, L.; Ichitsubo, M.; Uchida, K.; Sekreta, E.; Ikazaki, F.”
Preparation of Mg2Ni base alloy by the combination of mechanical alloying
and heat treatment at low temperature” Journal of Alloys and Compounds
Volume: 259, Issue: 1-2, August 22, 1997, pp. l5-l8
[17] Zaluska, A.; Zaluski, L.; Ström-Olsen, J.O.” Synergy of hydrogen
sorption in ball-milled hydrides of Mg and Mg2Ni” Journal of Alloys and
Compounds Volume: 289, Issue: 1-2, July 20, 1999, pp. 197-206
[18] Sun, Dalin; Enoki, Hirotoshi; Gingl, Franz; Akiba, Etsuo” New approach
for synthesizing Mg-based alloys” Journal of Alloys and Compounds Volume:
285, Issue: 1-2, June 30, 1999, pp. 279-283
[19] http://www.irc.bham.ac.uk/theme1/atomisation/spray.htm
Figure Resource: Engineering at Birmingham
[20] Terashita, N.; Takahashi, M.; Kobayashi, K.; Sasai, T.; Akiba, E.”
Synthesis and hydriding/dehydriding properties of amorphous Mg2Ni1.9M0.1
alloys mechanically alloyed from Mg2Ni0.9M0.1 (M=none, Ni, Ca, La, Y, Al,
Si, Cu and Mn) and Ni powder” Journal of Alloys and Compounds Volume: 293-
295, December 20, 1999, pp. 541-545
[21] Spassov, Tony; Köster, Uwe” Hydrogenation of amorphous and
nanocrystalline Mg-based alloys” Journal of Alloys and Compounds Volume:
287, Issue: 1-2, June 1, 1999, pp. 243-250
[22] http://www.transmet.com/development.htm
Figure Resource: TRANSMET CORPORATION
[23] Palade, P.; Sartori, S.; Maddalena, A.; Principi, G.; Lo Russo, S.;
Lazarescu, M.; Schinteie, G.” Hydrogen storage in Mg–Ni–Fe compounds
prepared by melt spinning and ball milling” Journal of Alloys and
Compounds Volume: 415, Issue: 1-2, May 18, 2006, pp. 170-176
[24] Friedlmeier, G.; Arakawa, M.; Hirai, T.; Akiba, E” Preparation and
structural, thermal and hydriding characteristics of melt-spun Mg–Ni
alloys” Journal of Alloys and Compounds Volume: 292, Issue: 1-2, November
15, 1999, pp. 107-117
[25] Shao, Huaiyu; Liu, Tong; Li, Xingguo; Zhang, Lefu” Preparation of Mg2Ni
intermetallic compound from nanoparticles” Scripta Materialia Volume: 49,
Issue: 6, September, 2003, pp. 595-599
[26] Ueda, Tamotsu T.; Tsukahara, Makoto; Kamiya, Yoshihisa; Kikuchi, Shiomi”
Preparation and hydrogen storage properties of Mg–Ni–Mg2Ni laminate
composites” Journal of Alloys and Compounds Volume: 386, Issue: 1-2,
January 11, 2005, pp. 253-257
[27] Merzharov A.G.; Borovinskaya Z.P.; Combustion Scitichnol Volume:10, 1975,
pp.195
[28] Li, Liquan; Akiyama, Tomohiro; Yagi, Jun-ichiro” Hydrogen storage alloy
of Mg2NiH4 hydride produced by hydriding combustion synthesis from powder
of mixture metal” Journal of Alloys and Compounds Volume: 308, Issue: 1-2,
August 10, 2000, pp. 98-103
[29] Hong, Tae-Whan; Kim, Young Jig” Fabrication and evaluation of hydriding /
dehydriding behaviors of Mg–10 wt.%Ni alloys by rotation-cylinder method”
Journal of Alloys and Compounds Volume: 333, Issue: 1-2, February 14, 2002,
pp. L1-L6
[30] ASM, metals handbook, Volume: 8, page 314, 1973
[31] M. Y. Song, M. Pezat, and B. Darriet, J. Y. Lee, P. Hagenmuller, Journal
of Materials Science Volume:21, pp.346