Preparing method for rare earth enhanced titanium alloy material
A titanium alloy and rare earth technology, which is applied in the field of preparation of rare earth reinforced titanium alloy materials, can solve the problems of dimensional deformation, reduce mechanical properties, dislocation, etc., and achieve the effect of improving performance and improving tensile strength.
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Embodiment 1
[0016] The preparation method of the present invention comprises the following steps: powder preparation, laser 3D printing, vacuum annealing and electrochemical polishing steps. Among them, the blank is prepared by 3D printing technology, using orthogonal scanning, the laser processing parameters are: laser power 200W, scanning speed 1250mm / s, the blank formed by laser printing is ultrasonically cleaned for 10mins, and the blank is dried at 120°C. The raw materials containing the following elements are used as the titanium alloy powder raw materials in the powder preparation step: Al: 3.50%, Co: 0.05%, Zr: 0.85%, Hf: 0.40%, V: 1.50%, Sn: 0.25%, Ce: 0.25%, Cr: 0.10%, La: 1.20%, the balance is Ti, and the above percentages are mass percentages. First, ball mill the titanium alloy powder raw material until the particle size is below 200 mesh, and then sinter it. The sintering temperature is 1200°C, and the holding time is 3 hours to obtain a titanium alloy sintered block. The si...
Embodiment 2
[0018] The preparation method of the present invention comprises the following steps: powder preparation, laser 3D printing, vacuum annealing and electrochemical polishing steps. Among them, the blank is prepared by 3D printing technology, using orthogonal scanning, the laser processing parameters are: laser power 250W, scanning speed 1350mm / s, the blank formed by laser printing is ultrasonically cleaned for 15mins, and the blank is dried at 150°C. Raw materials containing the following elements are used as raw materials for titanium alloy powder in the powder preparation step: Al: 3.00%, Co: 0.10%, Zr: 0.95%, Hf: 0.40%, V: 1.50%, Sn: 0.15%, Ce: 0.35%, Cr: 0.20%, La: 1.50%, the balance is Ti, and the above percentages are mass percentages. First, ball mill the titanium alloy powder raw material until the particle size is below 200 mesh, and then sinter it. The sintering temperature is 1230° C., and the holding time is 2.5 hours to obtain a titanium alloy sintered block. The si...
Embodiment 3
[0020] The preparation method of the present invention comprises the following steps: powder preparation, laser 3D printing, vacuum annealing and electrochemical polishing steps. Among them, the blank is prepared by 3D printing technology, using orthogonal scanning, the laser processing parameters are: laser power 250W, scanning speed 1300mm / s, the blank formed by laser printing is ultrasonically cleaned for 15mins, and the blank is dried at 130°C. The raw material containing the following elements is used as the titanium alloy powder raw material in the powder preparation step: Al: 3.20%, Co: 0.10%, Zr: 0.85%, Hf: 0.40%, V: 1.50%, Sn: 0.25%, Ce: 0.50%, Cr: 0.50%, La: 1.00%, the balance is Ti, and the above percentages are mass percentages. First, ball mill the titanium alloy powder raw material until the particle size is below 200 mesh, and then sinter it. The sintering temperature is 1250°C, and the holding time is 3 hours to obtain a titanium alloy sintered block. The sinte...
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