Lithium borohydride/rare earth magnesium base alloy composite hydrogen storage material and preparation method thereof
A technology of lithium borohydride and hydrogen storage materials, which is applied in the field of lithium borohydride/rare earth magnesium-based alloy composite hydrogen storage materials and its preparation, can solve problems such as complicated operation, difficult to meet practical applications, and unsuitable for large-scale preparation of samples. Achieve the effect that the preparation method is simple and easy
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Embodiment 1
[0018] According to the alloy composition ratio, the rare earth elements and metals were prepared in the form of simple substances. 0.3 Mg 0.7 Ni 3.2 co 0.2 mn 0.2 Al 0.2 Alloy, the purity of the raw material is above 99.5%. The prepared raw material is vacuumed to 0.05Pa in a vacuum quenching furnace, and then protected by argon, smelted and thrown into a hydrogen storage alloy sheet of 0.05~0.10mm. The alloy sheet is 900 Heat treatment at ℃ for 4 hours, after cooling, ball milling, passing through a 200-mesh sieve to obtain hydrogen storage alloy powder with a particle size of less than 0.08mm. The obtained alloy is flaked alloy.
[0019] Commercially available LiBH 4 La 0.3 Mg 0.7 Ni 3.2 co 0.2 mn 0.2 Al 0.2 After the alloy is mixed according to the mass ratio of 4:1, add the heptane solution according to the ratio of the total mass of the mixed powder (g): the volume of the solution (ml) = 1:1, ball mill for 24 hours under the protection of argon, and freeze-dr...
Embodiment 2
[0023] Rare earth elements and metals are prepared in the form of simple substances according to the alloy composition ratio 0.5 Mg 0.4 Ni 3 co0.5 mn 0.4 Al 0.4 Alloy, the purity of the raw material is above 99.5%. The prepared raw material is vacuumed to 0.05Pa in a vacuum quenching furnace, and then protected by argon, smelted and thrown into a hydrogen storage alloy sheet of 0.05~0.10mm. The alloy sheet is 800 Heat treatment at ℃ for 6 hours, after cooling, ball milling, passing through a 200-mesh sieve to obtain hydrogen storage alloy powder with a particle size of less than 0.08mm. The obtained alloy powder was hydrogenated under a hydrogen pressure of 3 MPa to obtain a hydrogenated alloy.
[0024] Will commercially available LiBH 4 After mixing the powders at a mass ratio of 1:1, add 3ml of hexane solution according to the ratio of the total mass of the mixed powder (g): solution volume (ml) = 1:3, ball mill for 24 hours under the protection of argon, and test after...
Embodiment 3
[0026] Rare earth elements and metals are prepared in the form of simple substances according to the alloy composition ratio 0.8 Mg 0.2 Ni 2.8 co 0.8 mn 0.3 Al 0.1 Alloy, the purity of the raw material is above 99.5%, the prepared raw material is vacuumed to 0.05Pa in a vacuum quenching furnace, and then protected by argon, the pressure is about 0.05MPa, melted and thrown into a hydrogen storage alloy sheet of 0.05~0.10mm , the alloy flakes were heat treated at 1000°C for 2 hours, after cooling, they were milled into powder and passed through a 200-mesh sieve to obtain hydrogen storage alloy powder with a particle size of less than 0.08mm. The obtained alloy was flaked alloy.
[0027] Will commercially available LiBH 4 After the powders are mixed at a mass ratio of 1:4, add 1ml of tetrahydrofuran solution according to the ratio of the total mass of the mixed powder (g): the volume of the solution (ml) = 1:2, ball mill for 24 hours under the protection of argon, and test a...
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