Preparation method of high-purity micro-fine low-oxygen titanium powder
A high-purity, micro-technology, applied in the field of micro-, high-purity, low-oxygen titanium powder preparation, can solve problems such as titanium powder blowout, and achieve the effect of low oxygen content and high purity
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Embodiment 1
[0017] Embodiment 1: prepare the titanium powder of 200 orders, oxygen content 0.12wt.%
[0018] 1. Hydrogenate grade 1 titanium sponge with an oxygen content of 0.75wt.% at 480°C and 0.1MPa high-purity hydrogen pressure for 10 hours to obtain coarse titanium hydride with an average particle size of 500 μm;
[0019] 2. The above-mentioned titanium hydride powder is subjected to jet milling under the pressure of 0.3MPa high-purity argon to obtain titanium hydride with an average particle size of 100 μm;
[0020] 3. Vacuum dehydrogenate the jet-milled titanium hydride at 600°C for 12 hours to obtain titanium powder;
[0021] 4. Jet milling the titanium powder under the pressure of 0.3MPa high-purity argon gas to obtain titanium powder with a purity of 99.7%, an average particle size of 75 μm (200 mesh), and an oxygen content of 0.12wt.%.
[0022] 5. Vacuum-encapsulate the above-mentioned titanium powder to obtain high-purity micro-fine low-oxygen titanium powder.
Embodiment 2
[0023] Embodiment 2: prepare the titanium powder of 325 orders, oxygen content 0.13wt.%
[0024] 1. Hydrogenate grade 1 titanium sponge with an oxygen content of 0.75wt.% at 600°C and 0.2MPa high-purity hydrogen pressure for 8 hours to obtain coarse titanium hydride with an average particle size of 350μm;
[0025] 2. Jet-milling the above-mentioned titanium hydride powder under 0.5MPa high-purity argon pressure to obtain titanium hydride with an average particle size of 75 μm;
[0026] 3. Vacuum dehydrogenate the jet-milled titanium hydride at 650°C for 10 hours to obtain titanium powder;
[0027] 4. Jet milling the titanium powder under the pressure of 0.5MPa high-purity argon to obtain titanium powder with a purity of 99.7%, an average particle size of 45 μm (325 mesh), and an oxygen content of 0.13wt.%.
[0028] 5. Vacuum-encapsulate the above-mentioned titanium powder to obtain high-purity micro-fine low-oxygen titanium powder.
Embodiment 3
[0029] Embodiment 3: prepare the titanium powder of 500 orders, oxygen content 0.14wt.%
[0030] 1. Hydrogenate grade 1 titanium sponge with an oxygen content of 0.75wt.% at 700°C and 0.25MPa hydrogen pressure for 7 hours to obtain coarse titanium hydride with a particle size of 200μm;
[0031] 2. Jet milling the above-mentioned titanium hydride powder under the pressure condition of 0.6 MPa high-purity argon to obtain titanium hydride with an average particle size of 45 μm;
[0032] 3. Vacuum dehydrogenate the jet-milled titanium hydride at 700°C for 8 hours to obtain titanium powder;
[0033] 4. Jet milling the titanium powder under 0.6MPa high-purity argon pressure condition to obtain titanium powder with a purity of 99.7%, an average particle size of 30 μm (500 mesh), and an oxygen content of 0.14wt.%.
[0034] 5. Vacuum-encapsulate the above-mentioned titanium powder to obtain high-purity micro-fine low-oxygen titanium powder.
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