Low-temperature activated vanadium-based hydrogen storage alloy, and preparation method and application thereof
A low-temperature activation and hydrogen storage alloy technology, applied in chemical instruments and methods, hydrogen, inorganic chemistry, etc., can solve the problems of increasing raw material costs and processing troubles, reduce activation temperature, have broad application prospects, and facilitate large-scale promotion and use Effect
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Embodiment 1
[0080] This embodiment provides a low-temperature activation type vanadium-based hydrogen storage alloy, the elemental composition of the low-temperature activation type vanadium-based hydrogen storage alloy is Ti 0.05 Cr 0.15 V 0.8 Ce 0.02 ;
[0081] Prepared by the following preparation method:
[0082] (1) Dosing: Weigh elemental metals with a purity ≥ 99.9wt.% according to the atomic ratio and make dosing to obtain a mixture;
[0083] (2) Smelting: the mixture described in step (1) is put into the water-cooled copper mold of the non-consumable vacuum electric arc furnace, then put into the vacuum electric arc furnace and smelted under the protection of argon, the current in the smelting It is 200A, and the single smelting time is 150s. After a single smelting, the alloy is cooled to room temperature with the copper crucible, turned over, and then a new smelting is carried out, and the alloy ingot is obtained by repeated smelting 4 times;
[0084] Wherein, the alloy in...
Embodiment 2
[0089] This embodiment provides a low-temperature activation type vanadium-based hydrogen storage alloy, the elemental composition of the low-temperature activation type vanadium-based hydrogen storage alloy is Ti 0.05 Cr 0.15 V 0.8 Ce 0.01 , that is, modify “x=0.02” in Embodiment 1 to “x=0.01”, and other conditions are completely the same as Embodiment 1.
[0090] The XRD spectrum of the low-temperature activation type vanadium-based hydrogen storage alloy described in this embodiment is as follows figure 1 As shown, the alloy includes BCC phase and contains CeO 2 Components and VH 0.81 ;
[0091] Put the low-temperature activated vanadium-based hydrogen storage alloy described in this example into a stainless steel reaction vessel, and use the PCT hydrogen absorption and desorption test equipment to test the hydrogen absorption and desorption performance: under the condition of non-activation, at 8MPa H 2 And the first hydrogen absorption at room temperature 25°C, at 0...
Embodiment 3
[0093] This embodiment provides a low-temperature activation type vanadium-based hydrogen storage alloy, the elemental composition of the low-temperature activation type vanadium-based hydrogen storage alloy is Ti 0.05 Cr 0.15 V 0.8 Ce 0.05 , that is, modify “x=0.02” in Embodiment 1 to “x=0.05”, and other conditions are exactly the same as Embodiment 1.
[0094] The XRD spectrum of the low-temperature activation type vanadium-based hydrogen storage alloy described in this embodiment is as follows figure 1 As shown, the alloy includes BCC phase and contains CeO 2 Components and VH 0.81 ;
[0095] Put the low-temperature activated vanadium-based hydrogen storage alloy described in this example into a stainless steel reaction vessel, and use the PCT hydrogen absorption and desorption test equipment to test the hydrogen absorption and desorption performance: under the condition of non-activation, at 8MPa H 2 And the first hydrogen absorption at room temperature 25°C, at 0.1M...
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