On-Board Physical Based 70 MPa Hydrogen Storage Systems

被引:4
|
作者
Veenstra, Michael J. [1 ]
Hobein, Bert [1 ]
机构
[1] Ford Motor Co, Dearborn, MI 48121 USA
关键词
D O I
10.4271/2011-01-1343
中图分类号
U [交通运输];
学科分类号
08 ; 0823 ;
摘要
Fossil energy diversity and security along with environmental emission policies demand new energy carriers and associated technologies in the future. One of the major challenges of the automotive industry and research institutes worldwide currently is to develop and realize alternative fuel concepts for passenger cars. In line with Ford's global hydrogen vehicle program, different onboard hydrogen storage technologies are under investigation. In general, hydrogen storage methods can be categorized as either physical storage of hydrogen (i.e. compressed, liquid, or cryo-compressed) or material based hydrogen storage. Currently, automotive OEMs have only introduced hydrogen fleet vehicles that utilize physical-based hydrogen storage systems but they have recognized that hydrogen storage systems need to advance further to achieve the range associated with today's gasoline vehicle. At Ford Motor Company, compressed gaseous hydrogen storage systems at 35 MPa (350 bar) have been deployed to a fleet of hydrogen fuel cell vehicles as well as internal combustion engine powered vehicles. The direct customer feedback from these hydrogen fleet vehicles was the need for improved driving range to be comparable with conventional vehicles. Through doubling the working pressure to 70 MPa (700 bar), the volumetric storage density of the fuel storage system significantly improves closing the performance gap of driving range. In this report, next-generation 70 MPa hydrogen storage systems are presented with regard to their overall design, component development, refueling capabilities, and verification testing on component, system as well as vehicle level. Overall, the 70 MPa hydrogen storage systems have demonstrated significant improvement in the compressed hydrogen fuel capacity facilitating the path for achieving greater than 300 miles range on fuel cell vehicles. The Ford 70 MPa hydrogen storage systems have been developed using the internal product development disciplines and have achieved the implementation milestone. The 70 MPa system designs were based on today's state-of-the-art hydrogen storage technology and have proven to provide the desired functionality and appropriate safety in particular with regard to certification and approval according to North America standards as well as European regulations.
引用
收藏
页码:1862 / 1871
页数:10
相关论文
共 50 条
  • [1] On-board hydrogen storage systems for automotive application
    Das, LM
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 1996, 21 (09) : 789 - 800
  • [2] Research on protection methods for 70 MPa on-board Type IV hydrogen storage cylinders under localized fire conditions
    Li, Xiang
    Zhu, Chaoyang
    Liu, Cenfan
    Liu, Yitao
    Song, Jitian
    Liu, Xu
    Li, Jiepu
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 50 : 992 - 1005
  • [3] System simulation models for on-board hydrogen storage systems
    Kumar, Sudarshan
    Raju, Mandhapati
    Kumar, V. Senthil
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2012, 37 (03) : 2862 - 2873
  • [4] Overview of systems considerations for on-board chemical hydrogen storage
    Aardahl, C. L.
    Rassat, S. D.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2009, 34 (16) : 6676 - 6683
  • [5] MICROSPHERES FOR ON-BOARD HYDROGEN STORAGE
    DURET, B
    SAUDIN, A
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 1994, 19 (09) : 757 - 764
  • [6] Validation of the Localized Fire Test Method for On-Board Hydrogen Storage Systems
    Tamura, Yohsuke
    Takeuchi, Masayuki
    Maeda, Kiyotaka
    Ohtsuka, Noriaki
    Sato, Kenji
    SAE INTERNATIONAL JOURNAL OF PASSENGER CARS-MECHANICAL SYSTEMS, 2014, 7 (03): : 1027 - 1035
  • [7] Light metal amide/imide systems for on-board hydrogen storage materials
    Isobe, Shigehito
    Ichikawa, Takayuki
    Fujii, Hironobu
    JOURNAL OF THE JAPAN INSTITUTE OF METALS, 2006, 70 (11) : 865 - 869
  • [8] The development of a computational platform to design and simulate on-board hydrogen storage systems
    Mazzucco, Andrea
    Rokni, Masoud
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (04) : 2187 - 2200
  • [9] On-board hydrogen storage and production: An application of ammonia electrolysis
    Boggs, Bryan K.
    Botte, Gerardine G.
    JOURNAL OF POWER SOURCES, 2009, 192 (02) : 573 - 581
  • [10] TANK DESIGN FOR ON-BOARD HYDROGEN STORAGE IN METAL HYDRIDES
    Couturier, Karelle
    Joppich, Farida
    Woerner, Antje
    Tamme, Rainer
    ES2008: PROCEEDINGS OF THE 2ND INTERNATIONAL CONFERENCE ON ENERGY SUSTAINABILITY - 2008, VOL 1, 2009, : 517 - 524