Modeling of hydrogen liquefaction using magnetocaloric cycles with permanent magnets

被引:17
|
作者
Feng, Tianshi [1 ]
Chen, Renkun [2 ]
Ihnfeldt, Robin, V [2 ]
机构
[1] Univ Calif La Jolla, Dept Mech & Aerosp Engn, San Diego, CA 92093 USA
[2] Gen Engn & Res LLC, San Diego, CA 92021 USA
关键词
Magnetocaloric; Refrigeration; Permanent magnet; Hydrogen liquefaction; Fuel cell; Cryogenic; REFRIGERATION; REGENERATOR; THERMODYNAMICS; DESIGN;
D O I
10.1016/j.ijrefrig.2020.06.032
中图分类号
O414.1 [热力学];
学科分类号
摘要
Hydrogen (H-2) is promising alternative to replace fossil fuels, but its transport and storage has been challenging. As H-2 fuel cell vehicles are gaining traction, the infrastructure for storing large amounts of liquid H-2 is needed. However, liquid H-2 would suffer from boil-off loss, and traditional vapor compression refrigeration systems would not be able to economically recover the lost H-2 due to the low efficiencies at cryogenic temperature. Magnetocaloric (MC) refrigeration systems could possess much higher coefficient of performance (COP) at cryogenic temperature compared to the vapor compression ones. Previous work on cryogenic MC systems, however, have only focused on large scale applications which use superconducting magnets to provide a large magnetic field but are prohibitively expensive to operate for small scale applications, such as that of a H-2 refilling station. In this work, we model the performance of a MC refrigeration cycle using 1-Tesla permanent magnets for H-2 liquefaction, with the objective of cooling H-2 from 80 K (using liquid nitrogen as the heat sink) to 20 K (boiling point of hydrogen). We evaluate main performance metrics including the total work input to the refrigeration system, COP, total MCM mass in the system, and total volume of the permanent magnets, etc. Our modeling results indicate that such a permanent magnet-based MC cooling system is feasible for small-scale H-2 liquefaction, with projected COP values significantly higher than those of vapor compression systems. This work provides design guidelines for future experimental efforts on permanent magnet MC cooling systems for cryogenic cooling. (C) 2020 Elsevier Ltd and IIR. All rights reserved.
引用
收藏
页码:238 / 246
页数:9
相关论文
共 50 条
  • [21] Concepts of tunable magnets using permanent magnetic material for synchrotron radiation sources
    Sanchez, P. P.
    do Espirito Santo, T. S.
    Conforti, E.
    Tosin, G.
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2015, 778 : 67 - 76
  • [22] Noncontact spinning mechanism using rotary permanent magnets
    Sun F.
    Oka K.
    IEEJ Transactions on Industry Applications, 2010, 130 (07) : 913 - 919+9
  • [23] Moving simulation of vibration systems using permanent magnets
    Todaka, T
    Enokizono, M
    Fujita, E
    Ogura, Y
    IEEE TRANSACTIONS ON MAGNETICS, 2001, 37 (05) : 3456 - 3459
  • [24] Novel magnetizing technique using high temperature superconducting bulk magnets for permanent magnets in interior permanent magnet rotors
    Oka, T.
    Hasebe, S.
    Ogawa, J.
    Fukui, S.
    Nakano, T.
    Sakai, N.
    Miryala, M.
    Murakami, M.
    Yokoyama, K.
    SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2020, 33 (08)
  • [25] Role of heat exchangers in helium liquefaction cycles: Simulation studies using Collins cycle
    Thomas, Rijo Jacob
    Ghosh, Parthasarathi
    Chowdhury, Kanchan
    FUSION ENGINEERING AND DESIGN, 2012, 87 (01) : 39 - 46
  • [26] Magnetic field modeling and validation for a spherical actuator with cylindrical permanent magnets
    Liu, Jingmeng
    Li, Xuerong
    Chen, Weihai
    Liu, Lu
    Bai, Shaoping
    SIMULATION MODELLING PRACTICE AND THEORY, 2020, 98
  • [27] Magnetic Refrigeration with Recycled Permanent Magnets and Free Rare-Earth Magnetocaloric La-Fe-Si
    Benke, Dimitri
    Fries, Maximilian
    Specht, Marius
    Wortmann, Jonas
    Pabst, Marc
    Gottschall, Tino
    Radulov, Iliya
    Skokov, Konstantin
    Bevan, Alex Ivor
    Prosperi, Davide
    Tudor, Catalina Oana
    Afiuny, Peter
    Zakotnik, Miha
    Gutfleisch, Oliver
    ENERGY TECHNOLOGY, 2020, 8 (07)
  • [28] Enhanced magnetocaloric effect in rare-earth aluminum-based magnetic materials for hydrogen liquefaction
    Tian, Lu
    Sun, Haobo
    Mo, Zhaojun
    Gao, Xinqiang
    Li, Zhenxing
    Liu, Guodong
    Shen, Jun
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2025, 98 : 1205 - 1211
  • [29] Design of a Hopping Mechanism using Permanent Magnets for Small-scale Exploration Rovers
    Kurisu, Masamitsu
    2014 IEEE/RSJ INTERNATIONAL CONFERENCE ON INTELLIGENT ROBOTS AND SYSTEMS (IROS 2014), 2014, : 2355 - 2360
  • [30] Analysis of a new induction heating device by using permanent magnets
    Watanabe, T
    Todaka, T
    Enokizono, M
    IEEE TRANSACTIONS ON MAGNETICS, 2005, 41 (05) : 1884 - 1887