Metal hydride hydrogen storage and supply systems for electric forklift with low-temperature proton exchange membrane fuel cell power module

被引:47
|
作者
Lototskyy, Mykhaylo V. [1 ]
Tolj, Ivan [1 ,2 ]
Davids, Moegamat Wafeeq [1 ]
Klochko, Yevgeniy V. [1 ]
Parsons, Adrian [1 ]
Swanepoel, Dana [3 ]
Ehlers, Righardt [3 ]
Louw, Gerhard [3 ]
van der Westhuizen, Burt [3 ]
Smith, Fahmida [4 ]
Pollet, Bruno G. [1 ]
Sita, Cordellia [1 ]
Linkov, Vladimir [1 ]
机构
[1] Univ Western Cape, HySA Syst Competence Ctr, SAIAMC, Robert Sobukwe Rd,Private Bag X17, ZA-7535 Bellville, South Africa
[2] Univ Split, Fac Mech Engn & Naval Architecture, Dept Thermodynam & Heat Engines, Split, Croatia
[3] TF DESIGN Pty Ltd, Stellenbosch, South Africa
[4] Impala Platinum Ltd, Springs, South Africa
基金
新加坡国家研究基金会;
关键词
Hybrid hydrogen storage; Metal hydride; Compressed gas; Refuelling; Fuel cell forklift; Fuel cell power module; PERFORMANCE; MANAGEMENT; ISSUES; TRUCK;
D O I
10.1016/j.ijhydene.2016.01.148
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
A novel hydrogen storage system for a RX60-30L 3-tonne electric forklift (STILL), equipped with a GenDrive 1600-80A fuel cell power module (Plug Power) has been developed. The system combines a compressed H-2 composite cylinder (CGH2) and a liquid-heated-cooled metal hydride (MH) extension tank which is thermally integrated with a power module. The MH extension tank comprises a MH bed formed according to an advanced solution to provide easy activation of the MH material and fast H-2 charge/discharge. The system has the same hydrogen storage capacity (similar to 19 Nm(3) H-2 or 1.7 kg) as the separate CGH2 tank charged at P = 350 bar, but at a lower H-2 charge pressure (<= 185 bar). A 15 min cycle refuelling provides the forklift with full-load operation (according to VDI-60 protocol) during >3 h, or 2 to 4 working shifts in a real industrial environment. The work also presents a hydrogen refuelling station (dispensing pressure up to 185 bar) with integrated MH compressor which has been developed for forklift refuelling. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:13831 / 13842
页数:12
相关论文
共 50 条
  • [1] Performance of electric forklift with low-temperature polymer exchange membrane fuel cell power module and metal hydride hydrogen storage extension tank
    Lototskyy, Mykhaylo V.
    Tolj, Ivan
    Parsons, Adrian
    Smith, Fahmida
    Sita, Cordellia
    Linkov, Vladimir
    [J]. JOURNAL OF POWER SOURCES, 2016, 316 : 239 - 250
  • [2] Experimental and numerical investigations on synergistic coupling of metal hydride hydrogen storage systems with low-temperature proton exchange membrane fuel-cell
    Parida, Abhishek
    Kumar, Alok
    Muthukumar, P.
    Dalal, Amaresh
    [J]. Thermal Science and Engineering Progress, 2024, 51
  • [3] Metal hydride systems for hydrogen storage and supply for stationary and automotive low temperature PEM fuel cell power modules
    Lototskyy, Mykhaylo V.
    Davids, Moegamat Wafeeq
    Tolj, Ivan
    Klochko, Yevgeniy V.
    Sekhar, Bhogilla Satya
    Chidziva, Stanford
    Smith, Fahmida
    Swanepoel, Dana
    Pollet, Bruno G.
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2015, 40 (35) : 11491 - 11497
  • [4] Thermal coupling studies of a high temperature proton exchange membrane fuel cell stack and a metal hydride hydrogen storage system
    Reddy, E. Harikishan
    Jayanti, S.
    [J]. WHEC 2012 CONFERENCE PROCEEDINGS - 19TH WORLD HYDROGEN ENERGY CONFERENCE, 2012, 29 : 254 - 264
  • [5] Enhancement of hydrogen storage performance in shell and tube metal hydride tank for fuel cell electric forklift
    Wang, Hanbin
    Du, Miao
    Wang, Qi
    Li, Zhipeng
    Wang, Shumao
    Gao, Zhengming
    Derksen, J. J.
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2023, 48 (61) : 23568 - 23580
  • [6] Thermal management of metal hydride hydrogen storage tank coupled with proton exchange membrane fuel cells
    Tong, Liang
    Yuan, Chengqing
    Yang, Tianqi
    Yuan, Yupeng
    Chahine, Richard
    Xiao, Jinsheng
    [J]. CASE STUDIES IN THERMAL ENGINEERING, 2023, 43
  • [7] Performance optimization study on the thermal management system of proton exchange membrane fuel cell based on metal hydride hydrogen storage
    Wang, Yuhang
    Dai, Hui
    Cao, Hongmei
    Zhou, Shaobin
    Gao, Ming
    Sun, Fengzhong
    Liu, Jiangwei
    Han, Kuihua
    Jiang, Jianguo
    [J]. ENERGY, 2024, 305
  • [8] Dynamic analysis and control optimization of hydrogen supply for the proton exchange membrane fuel cell and metal hydride coupling system with a hydrogen buffer tank
    Wang, Yuhang
    Zhang, Huiying
    He, Suoying
    Wang, Wenlong
    Gao, Ming
    Moiseevna, Koltsova Eleonora
    Anatolievna, Vasilenko Violetta
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2023, 291
  • [9] Heat integration and optimization of hydrogen production for a 1 kW low-temperature proton exchange membrane fuel cell
    Lei, Jiao
    Yue, Hairong
    Tang, Hao
    Liang, Bin
    [J]. CHEMICAL ENGINEERING SCIENCE, 2015, 123 : 81 - 91
  • [10] The study of the hydrogen supply system of small proton exchange membrane fuel cell power source
    Yu, T
    Liu, LM
    Lu, HY
    [J]. HYDROGEN ENERGY PROGRESS XIII, VOLS 1 AND 2, PROCEEDINGS, 2000, : 528 - 533