A Review on the Overall Performance of Metal Hydride-Based Hydrogen Storage Systems

被引:0
作者
Larpruenrudee, Puchanee [1 ]
Bennett, Nick S. [1 ]
Luo, Zhen [1 ]
Hossain, M. J. [2 ]
Haque, Nawshad [3 ]
Sauret, Emilie [4 ]
Fitch, Robert [1 ]
Islam, Mohammad S. [1 ]
机构
[1] Univ Technol Sydney, Sch Mech & Mechatron Engn, Ultimo, NSW 2007, Australia
[2] Univ Technol Sydney, Sch Elect & Data Engn, 15 Broadway, Ultimo, NSW 2007, Australia
[3] CSIRO Mineral Resources, Clayton South, Melbourne, Vic 3169, Australia
[4] Queensland Univ Technol, Fac Engn, Sch Mech Med & Proc Engn, Brisbane, Qld 4000, Australia
关键词
metal hydride; hydrogen storage; hydrogen absorption and desorption; thermal design; heat transfer enhancement; heat exchanger; PHASE-CHANGE MATERIAL; TUBE HEAT-EXCHANGER; EFFECTIVE THERMAL-CONDUCTIVITY; LEARNING BASED PREDICTION; EMBEDDED COOLING TUBES; PEM FUEL-CELL; MASS-TRANSFER; SENSITIVITY-ANALYSIS; TRANSFER ENHANCEMENTS; ABSORPTION PROPERTIES;
D O I
10.3390/en18051291
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Metal hydride-based hydrogen storage (MHHS) has been used for several purposes, including mobile and stationary applications. In general, the overall MHHS performance for both applications depends on three main factors, which are the appropriate selection of metal hydride material uses, design configurations of the MHHS based on the heat exchanger, and overall operating conditions. However, there are different specific requirements for the two applications. The weight of the overall MHHS is the key requirement for mobile applications, while hydrogen storage capacity is the key requirement for stationary applications. Based on these requirements, several techniques have been recently used to enhance MHHS performance by mostly considering the faster hydrogen absorption/desorption reaction. Considering metal hydride (MH) materials, their low thermal conductivity significantly impacts the hydrogen absorption/desorption reaction. For this purpose, a comprehensive understanding of these three main factors and the hydrogen absorption/desorption reaction is critical and it should be up to date to obtain the suitable MHHS performance for all related applications. Therefore, this article reviews the key techniques, which have recently been applied for the enhancement of MHHS performance. In the review, it is demonstrated that the design and layout of the heat exchanger greatly affect the performance of the internal heat exchanger. The initial temperature of the heat transfer fluid and hydrogen supply pressure are the main parameters to increase the hydrogen sorption rate and specific heating power. The higher supply pressure results in the improvement in specific heating power. For the metal hydride material selection under the consideration of mobile applications and stationary applications, it is important to strike trade-offs between hydrogen storage capacity, weight, material cost, and effective thermal conductivity.
引用
收藏
页数:50
相关论文
共 209 条
[61]   Thermal conductivity of metal hydride materials for storage of hydrogen: Experimental investigation [J].
Hahne, E ;
Kallweit, J .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 1998, 23 (02) :107-114
[62]   Low temperature phase change materials for thermal energy storage: Current status and computational perspectives [J].
Hameed, Gul ;
Ghafoor, Muhammad Ahsan ;
Yousaf, Muhammad ;
Imran, Muhammad ;
Zaman, Muhammad ;
Elkamel, Ali ;
Haq, Azharul ;
Rizwan, Muhammad ;
Wilberforce, Tabbi ;
Abdelkareem, Mohammad Ali ;
Olabi, A. G. .
SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2022, 50
[63]   Hierarchical methodology for modeling hydrogen storage systems. Part II: Detailed models [J].
Hardy, Bruce J. ;
Anton, Donald L. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2009, 34 (07) :2992-3004
[64]  
Hassanpouryouzband A, 2024, Roy Soc Chem, V53, P2258
[65]   In situ hydrogen generation from underground fossil hydrocarbons [J].
Hassanpouryouzband, Aliakbar ;
Veshareh, Moein Jahanbani ;
Wilkinson, Mark ;
Nick, Hamidreza M. ;
Ngwenya, Bryne T. ;
Haszeldine, R. Stuart .
JOULE, 2025, 9 (02)
[66]   Materials for hydrogen-based energy storage - past, recent progress and future outlook [J].
Hirscher, Michael ;
Yartys, Volodymyr A. ;
Baricco, Marcello ;
von Colbe, Jose Bellosta ;
Blanchard, Didier ;
Bowman, Robert C., Jr. ;
Broom, Darren P. ;
Buckley, Craig E. ;
Chang, Fei ;
Chen, Ping ;
Cho, Young Whan ;
Crivello, Jean-Claude ;
Cuevas, Fermin ;
David, William I. F. ;
de Jongh, Petra E. ;
Denys, Roman, V ;
Dornheim, Martin ;
Felderhoff, Michael ;
Filinchuk, Yaroslav ;
Froudakis, George E. ;
Grant, David M. ;
Gray, Evan MacA ;
Hauback, Bjorn C. ;
He, Teng ;
Humphries, Terry D. ;
Jensen, Torben R. ;
Kim, Sangryun ;
Kojima, Yoshitsugu ;
Latroche, Michel ;
Li, Hai-Wen ;
Lototskyy, Mykhaylo, V ;
Makepeace, Joshua W. ;
Moller, Kasper T. ;
Naheed, Lubna ;
Ngene, Peter ;
Noreus, Dag ;
Nygard, Magnus Moe ;
Orimo, Shin-ichi ;
Paskevicius, Mark ;
Pasquini, Luca ;
Ravnsbaek, Dorthe B. ;
Sofianos, M. Veronica ;
Udovic, Terrence J. ;
Vegge, Tejs ;
Walker, Gavin S. ;
Webb, Colin J. ;
Weidenthaler, Claudia ;
Zlotea, Claudia .
JOURNAL OF ALLOYS AND COMPOUNDS, 2020, 827
[67]   Metal hydride thermal management using phase change material in the context of a standalone solar-hydrogen system [J].
Huy Quoc Nguyen ;
Shabani, Bahman .
ENERGY CONVERSION AND MANAGEMENT, 2020, 224
[68]   Characteristic study on fuel cell/battery hybrid power system on a light electric vehicle [J].
Hwang, Jenn Jiang ;
Chang, Wei Ru .
JOURNAL OF POWER SOURCES, 2012, 207 :111-119
[69]   THERMAL-CONDUCTIVITY OF MAGNESIUM-NICKEL HYDRIDE POWDER BEDS IN A HYDROGEN ATMOSPHERE [J].
ISHIDO, Y ;
KAWAMURA, M ;
ONO, S .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 1982, 7 (02) :173-182
[70]   Hydrogen storage in Mg: A most promising material [J].
Jain, I. P. ;
Lal, Chhagan ;
Jain, Ankur .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (10) :5133-5144