Optimization of metal hydride material and evaluation of metal hydride tank for hydrogen-powered micromobility

被引:0
|
作者
Kwak, Ryun-Ho [1 ]
Kim, Do-Ho [1 ]
Park, Hyung-Ki [1 ]
机构
[1] Korea Inst Ind Technol, Funct Mat & Components Grp, Kangnung 25440, South Korea
关键词
Hydrogen; Micromobility; Metal hydride; Metal hydride tank; Plateau pressure; TERNARY ALLOYING ELEMENTS; DENSITY-FUNCTIONAL THEORY; STORAGE PROPERTIES; KINETICS; MICROSTRUCTURE; SUBSTITUTION; STATIONARY;
D O I
10.1016/j.ijhydene.2025.03.079
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
This study derived the criterion for the hydrogen storage properties of metal hydride materials for hydrogenpowered micromobility applications. In addition, metal hydride tanks were fabricated by loading AB2-type metal hydride materials, and their hydrogen charging and discharging characteristics were evaluated. To simulate the operational conditions of metal hydride tanks supplying hydrogen to fuel cells in micromobility, the tanks were exposed to atmospheric conditions and released hydrogen at a discharging pressure of 2 bar without heat exchange. A metal hydride tank was fabricated by loading metal hydride material charged hydrogen at 30 bar, and its hydrogen discharging characteristics were evaluated at 1 NL/min flow rate. The temperature inside the tank dropped to -18 degrees C, causing unstable discharging hydrogen flow rate. The Van't Hoff equation analysis revealed that the desorption plateau pressure at -20 degrees C fell below the discharging pressure of 2 bar. From this analysis, the criterion of the metal hydride for micromobility applications was established as having the desorption pressure of more than 2 bar at -20 degrees C. A metal hydride tank with an outer diameter of 60.5 mm, a length of 350 mm, and an internal volume of 0.73 L was fabricated by loading a material that satisfies the criterion. The tank was charged by applying hydrogen gas of 60 bar, and 48.9 g of hydrogen was stored. When hydrogen was discharged at a pressure of 2 bar and a flow rate of 2 NL/min, the temperature inside the tank dropped to a minimum of -23 degrees C. Despite this temperature drop, the discharging pressure and flow rate were stably maintained for 208 min, during which 37.1 g of hydrogen was released. These results confirmed that the metal hydride tank, using metal hydride materials that satisfy the established criterion, can stably supply hydrogen in hydrogen-powered micromobility applications.
引用
收藏
页码:128 / 138
页数:11
相关论文
共 50 条
  • [21] Comparative evaluation of sizing of metal hydride (MH) hydrogen storage tank filled with different alloys
    Hilali, Ismail
    INTERNATIONAL JOURNAL OF GREEN ENERGY, 2016, 13 (09) : 911 - 917
  • [22] Metal hydride material requirements for automotive hydrogen storage systems
    Pasini, Jose Miguel
    Corgnale, Claudio
    van Hassel, Bart A.
    Motyka, Theodore
    Kumar, Sudarshan
    Simmons, Kevin L.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (23) : 9755 - 9765
  • [23] Studies on hydride-forming alloys as the active material of a metal hydride electrode for a nickel metal hydride cell
    Lim, HS
    Zelter, GR
    Allison, DU
    Reilly, JJ
    Srinivasan, S
    Stockel, JF
    TWELFTH ANNUAL BATTERY CONFERENCE ON APPLICATIONS AND ADVANCES, 1997, : 43 - 48
  • [24] Rational optimization of metal hydride tank with LaNi4.25Al0.75 as hydrogen storage medium
    Lin, Xi
    Xie, Wei
    Zhu, Qi
    Yang, Hongguang
    Li, Qian
    CHEMICAL ENGINEERING JOURNAL, 2021, 421
  • [25] Parametric optimization of coupled fin-metal foam metal hydride bed towards enhanced hydrogen absorption performance of metal hydride hydrogen storage device
    Bai, Xiao-Shuai
    Yang, Wei-Wei
    Tang, Xin-Yuan
    Dai, Zhou-Qiao
    Yang, Fu-Sheng
    ENERGY, 2022, 243
  • [26] Dynamic modelling and optimization of hydrogen storage in metal hydride beds
    Kikkinides, Eustathios S.
    Georgiadis, Michael C.
    Stubos, Athanasios K.
    ENERGY, 2006, 31 (13) : 2428 - 2446
  • [27] Impact of kinetic reaction models on hydrogen absorption in metal hydride tank modeling
    Lahmer, K.
    Bessaih, R.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2015, 40 (39) : 13718 - 13724
  • [28] Experimental Study on a Metal Hydride Tank for the Totalized Hydrogen Energy Utilization System
    Nakano, Akihiro
    Maeda, Tetsuhiko
    Ito, Hiroshi
    Motyka, Theodore
    Perez-Berrios, Jose M.
    Greenway, Scott
    WHEC 2012 CONFERENCE PROCEEDINGS - 19TH WORLD HYDROGEN ENERGY CONFERENCE, 2012, 29 : 463 - 468
  • [29] Dynamic modeling and simulation of hydrogen supply capacity from a metal hydride tank
    Cho, Ju-Hyeong
    Yu, Sang-Seok
    Kim, Man-Young
    Kang, Sang-Gyu
    Lee, Young-Duk
    Ahn, Kook-Young
    Ji, Hyun-Jin
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (21) : 8813 - 8828
  • [30] Design of a AB5-metal hydride cylindrical tank for hydrogen storage
    Li, Yuanlu
    Teliz, Erika
    Zinola, Fernando
    Diaz, Veronica
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (68) : 33889 - 33898