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In this paper, the system designs for hydrogen storage using chemical hydrogen materials in an 80-kWe fuel cell, light-duty vehicle are described.
The analyses suggest significantly higher void growth rates exist in a hydrogen-charged material than in a hydrogen free material, with a corresponding reduction in tearing resistance in the presence of hydrogen regardless of the level of imposed constraint.
Thus, the Sn-filled CNFs can likely be used as a hydrogen storage material.
Ammonia borane (NH3BH3, AB) is a promising hydrogen source material due to its high hydrogen content (19.6 wt%).
A good hydrogen storage material should adsorb hydrogen in high concentrations and with optimal binding energies.
In this paper, we review production of NaBH4 as hydrogen storage material.
Over the past decade, sodium borohydride (NaBH4) has been extensively investigated as a potential hydrogen storage material.
The Al/NaBH4 mixture may be applied as a portable hydrogen generation material.
Mg2NiH4, with fast sorption kinetics, is considered to be a promising hydrogen storage material.
Each hydrogen storage material considered in the book has its own strengths and weaknesses.
2 LiNH2–1.1 MgH2–0.1 LiBH4–3 wt.% ZrCoH3 is a solid state hydrogen storage material with a hydrogen storage capacity of up to 5.3 wt.%.
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