Method for manufacturing dispersion strengthening copper-based oil bearing
A technology for dispersion-strengthened copper and bearings, applied in the field of dispersion-strengthened metal material preparation, which can solve the problems of shaft seizure, sticking, and narrow working temperature range.
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Embodiment 1
[0012] Example 1: 1% Y 2 o 3 Dispersion strengthened copper base oil-impregnated bearing
[0013] 1) Prepare powder. The ratio of each component in the dispersion-strengthened copper-based oil-impregnated bearing is: 4% aluminum powder, 8% tin powder, 5% graphite powder, 1% nano-yttrium oxide powder, and the balance is copper powder. The particle size of the yttrium oxide used therein is 10-20 nm. The average particle size of aluminum powder and tin powder is not greater than 50 μm, graphite powder is -325 mesh, and the particle size of copper powder is not greater than 100 μm. And add 0.05% oleic acid as a dispersant.
[0014] 2) Put the configured alloy powder into a frequency conversion high-energy vibration ball mill for high-energy ball milling. The volume ratio of the ball to material used is 5:1, the vibration frequency of the ball mill is 30Hz, and the ball milling time is 10h, excluding downtime. Stop for 1 hour every 5 hours of ball milling to prevent the tempe...
Embodiment 2
[0018] Example 2: 1.5% Y 2 o 3 Dispersion strengthened copper base oil-impregnated bearing
[0019] 1) Prepare powder. The ratio of each component in the dispersion strengthened copper-based oil-impregnated bearing is: 6% aluminum powder, 10% tin powder, 3% graphite powder, 1.5% nanometer yttrium oxide powder, and the balance is copper powder. The particle size of the yttrium oxide used therein was 15 nm. The average particle size of aluminum powder and tin powder is not greater than 50 μm, graphite powder is -325 mesh, and the particle size of copper powder is not greater than 100 μm. And add 0.05% oleic acid as a dispersant.
[0020] 2) Put the configured alloy powder into a frequency conversion high-energy vibration ball mill for high-energy ball milling. The volume ratio of the ball to material used is 8:1, the vibration frequency of the ball mill is 40Hz, and the ball milling time is 15h, excluding downtime. Stop for 1 hour every 5 hours of ball milling to prevent t...
Embodiment 3
[0024] Example 3: 2% Y 2 o 3 Dispersion strengthened copper base oil-impregnated bearing
[0025] 1) Prepare powder. The ratio of each component in the dispersion strengthened copper-based oil-impregnated bearing is: 8% aluminum powder, 12% tin powder, 5% graphite powder, 2% nanometer yttrium oxide powder, and the balance is copper powder. The particle size of the yttrium oxide used therein was 20 nm. The average particle size of aluminum powder and tin powder is not greater than 50 μm, graphite powder is -325 mesh, and the particle size of copper powder is not greater than 100 μm. And add 0.05% oleic acid as a dispersant.
[0026] 2) Put the configured alloy powder into a frequency conversion high-energy vibration ball mill for high-energy ball milling. The volume ratio of the ball to material used is 10:1, the vibration frequency of the ball mill is 50Hz, and the ball milling time is 20h, excluding downtime. Stop for 1 hour every 5 hours of ball milling to prevent the ...
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