Structural investigation and solid-H2 reaction of Mg2Ni rich nanocomposite materials elaborated by mechanical alloying
Identifieur interne : 000C94 ( Main/Merge ); précédent : 000C93; suivant : 000C95Structural investigation and solid-H2 reaction of Mg2Ni rich nanocomposite materials elaborated by mechanical alloying
Auteurs : M. Abdellaoui [Tunisie] ; D. Cracco [France] ; A. Percheron-Guegan [France]Source :
- Journal of alloys and compounds [ 0925-8388 ] ; 1999.
Descripteurs français
- Pascal (Inist)
- Wicri :
- topic : Hydrogène, Matériau composite.
English descriptors
- KwdEn :
Abstract
Using a planetary ball mill and starting from a mixture of Mg and Ni with an atomic ration of 2:1, we have successfully elaborated a nanocomposite material formed by the Mg2Ni phase in high proportion, some residual Ni and an amorphous phase. The synthesis of this composite proceeded at milling intensities 7 and 10, corresponding respectively to 3.5 and 10 W g-1 shock power, respectively after 18 and 4 h. The best hydrogen absorption capacity reported, 3.75 H mole-1 (3.53 wt.%), is for the composite synthesized for 24 h at 3.5 W g-1 shock power.
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Pascal:00-0062549Le document en format XML
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reaction of Mg<sub>2</sub>
Ni rich nanocomposite materials elaborated by mechanical alloying</title>
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<author><name sortKey="Percheron Guegan, A" sort="Percheron Guegan, A" uniqKey="Percheron Guegan A" first="A." last="Percheron-Guegan">A. Percheron-Guegan</name>
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<sourceDesc><biblStruct><analytic><title xml:lang="en" level="a">Structural investigation and solid-H<sub>2</sub>
reaction of Mg<sub>2</sub>
Ni rich nanocomposite materials elaborated by mechanical alloying</title>
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<author><name sortKey="Percheron Guegan, A" sort="Percheron Guegan, A" uniqKey="Percheron Guegan A" first="A." last="Percheron-Guegan">A. Percheron-Guegan</name>
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<series><title level="j" type="main">Journal of alloys and compounds</title>
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<profileDesc><textClass><keywords scheme="KwdEn" xml:lang="en"><term>Absorption</term>
<term>Ball mill</term>
<term>Binary alloy</term>
<term>Composite material</term>
<term>Desorption</term>
<term>Experimental study</term>
<term>Hydrogen</term>
<term>Hydrogen storage</term>
<term>Magnesium alloy</term>
<term>Mechanical alloying</term>
<term>Microstructure</term>
<term>Nanocomposite</term>
<term>Nanostructured materials</term>
<term>Nickel base alloys</term>
<term>Planetary mill</term>
<term>X ray diffraction</term>
</keywords>
<keywords scheme="Pascal" xml:lang="fr"><term>Absorption</term>
<term>Hydrogène</term>
<term>Alliage mécanique</term>
<term>Broyeur boulet</term>
<term>Broyeur satellite</term>
<term>Microstructure</term>
<term>Diffraction RX</term>
<term>Désorption</term>
<term>Stockage hydrogène</term>
<term>Matériau composite</term>
<term>Nanomatériau</term>
<term>Nanocomposite</term>
<term>Alliage base nickel</term>
<term>Magnésium alliage</term>
<term>Alliage binaire</term>
<term>Etude expérimentale</term>
<term>Alliage Ni55Mg45</term>
<term>Mg Ni</term>
</keywords>
<keywords scheme="Wicri" type="topic" xml:lang="fr"><term>Hydrogène</term>
<term>Matériau composite</term>
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<front><div type="abstract" xml:lang="en">Using a planetary ball mill and starting from a mixture of Mg and Ni with an atomic ration of 2:1, we have successfully elaborated a nanocomposite material formed by the Mg<sub>2</sub>
Ni phase in high proportion, some residual Ni and an amorphous phase. The synthesis of this composite proceeded at milling intensities 7 and 10, corresponding respectively to 3.5 and 10 W g<sup>-1</sup>
shock power, respectively after 18 and 4 h. The best hydrogen absorption capacity reported, 3.75 H mole<sup>-1</sup>
(3.53 wt.%), is for the composite synthesized for 24 h at 3.5 W g<sup>-1</sup>
shock power.</div>
</front>
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