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Automotive hydrogen storage system using cryo-adsorption on activated carbon

Authors :
Ahluwalia, R.K.
Peng, J.K.
Source :
International Journal of Hydrogen Energy. Jul2009, Vol. 34 Issue 13, p5476-5487. 12p.
Publication Year :
2009

Abstract

Abstract: An integrated model of a sorbent-based cryogenic compressed hydrogen system is used to assess the prospect of meeting the near-term targets of 36kg-H2/m3 volumetric and 4.5wt% gravimetric capacity for hydrogen-fueled vehicles. The model includes the thermodynamics of H2 sorption, heat transfer during adsorption and desorption, sorption dynamics, energetics of cryogenic tank cooling, and containment of H2 in geodesically wound carbon fiber tanks. The results from the model show that recoverable hydrogen, rather than excess or absolute adsorption, is a determining measure of whether a sorbent is a good candidate material for on-board storage of H2. A temperature swing is needed to recover >80% of the sorption capacity of the superactivated carbon sorbent at 100K and 100bar as the tank is depressurized to 3–8bar. The storage pressure at which the system needs to operate in order to approach the system capacity targets has been determined and compared with the breakeven pressure above which the storage tank is more compact if H2 is stored only as a cryo-compressed gas. The amount of liquid N2 needed to cool the hydrogen dispensed to the vehicle to 100K and to remove the heat of adsorption during refueling has been estimated. The electrical energy needed to produce the requisite liquid N2 by air liquefaction is compared with the electrical energy needed to liquefy the same amount of H2 at a central plant. The alternate option of adiabatically refueling the sorbent tank with liquid H2 has been evaluated to determine the relationship between the storage temperature and the sustainable temperature swing. Finally, simulations have been run to estimate the increase in specific surface area and bulk density of medium needed to satisfy the system capacity targets with H2 storage at 100bar. [Copyright &y& Elsevier]

Details

Language :
English
ISSN :
03603199
Volume :
34
Issue :
13
Database :
Academic Search Index
Journal :
International Journal of Hydrogen Energy
Publication Type :
Academic Journal
Accession number :
42963811
Full Text :
https://doi.org/10.1016/j.ijhydene.2009.05.023