Study on the Characteristics of Hydrogen Storage according to the Structure of Storage Tank using Metal Hydride

수소저장합금을 이용한 수소저장탱크의 구조에 따른 수소저장 특성 연구

  • Sim, Kyu-Sung (Korea Institute of Energy Research, Hydrogen Energy Research Center) ;
  • Myung, Kwang-Sik (Korea Institute of Energy Research, Hydrogen Energy Research Center) ;
  • Kim, Jung-Duk (Korea Institute of Energy Research, Hydrogen Energy Research Center) ;
  • Kim, Jong-Won (Korea Institute of Energy Research, Hydrogen Energy Research Center)
  • 심규성 (한국에너지기술연구원 수소에너지연구센터) ;
  • 명광식 (한국에너지기술연구원 수소에너지연구센터) ;
  • 김정덕 (한국에너지기술연구원 수소에너지연구센터) ;
  • 김종원 (한국에너지기술연구원 수소에너지연구센터)
  • Published : 2002.03.30

Abstract

In order to utilize hydrogen energy in a large-scale in the future, development of effective hydrogen storage method is essentially required as well as that of efficient hydrogen production method. The hydrogen storage method using metal hydrides has been holding the spotlight as a safer and higher-density hydrogen storage method than conventional hydrogen storage methods such as liquid hydrogen or compressed hydrogen storage method. However when metals react with hydrogen to store hydrogen as metal hydrides, they undergo exothermic reactions, while metal hydrides evolve hydrogen by endothermic reaction. Therefore, hydrogen storage tank should have such structure that it can absorb or release reaction heat rapidly and efficiently. In this study, a review on the improvement of the heat release and absorption structure in the hydrogen storage tank was conducted, and as a result, a new type of hydrogen storage tank with the structure of vertical-type wall was designed and manufactured. Experimental results showed that this new type of tank could be used as an efficient hydrogen storage tank because its structure is simpler and manufacture is easier than cup-type hydrogen storage tank with the structure of packed horizontal cup.

Keywords

References

  1. 須田締ニ郎:"ケミカルエンジニヤリング, Vol. 5, 1983, p. 29.
  2. E. Tuscher, P. Weinzierl, and O. J. Eder,Int. J. Hydrogen Energy, Vol. 3, 1983, p.199.
  3. H. Ishikawa, K. Ogro, A. Kato, H.Suzuki, and E. Ishii, J. Less-Com. Met.Vol. 120, 1986, p. 123. https://doi.org/10.1016/0022-5088(86)90634-X
  4. 최승준, 박충년 : "Ti, Zr계 수소저장합금의산성무전해 구리도금법", 수소에너지, Vol.11, No. 2, 2000, p. 39.
  5. 김찬중, 김대룡 : "고분자 결합체를 이용한 수소 저장합금 분말 성형체의 특성", 수소에너지, Vol. 10, 1999, p. 81.
  6. M. Groll, W. Supper, U. Mayer, and 0.Brost, Int. J. Hydrogen Energy, Vol. 12,1987, p. 89. https://doi.org/10.1016/0360-3199(87)90085-1
  7. H. Bjurstrom, Y. Komazaki, and S. Suda,J. Less-Common Met., Vol. 131, 1987, p.225. https://doi.org/10.1016/0022-5088(87)90522-4
  8. U. Mayer, M. Groll, and W. Supeer, J.Less-Com. Met, Vol. 131, 1987, p. 2351.