Self-lubricating material for joint robot and preparation method thereof
A self-lubricating material and robot technology, applied in metal processing equipment, transportation and packaging, etc., can solve the problems of large friction damping and low material strength of lubricating materials
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[0020] Correspondingly, the present invention also provides a preparation method of a self-lubricating material for joint robots, comprising the following steps: 12-18 parts by weight of iron powder, 3-8 parts by weight of Al powder, 10-16 parts by weight of copper sulfide powder, graphite 6-11 parts by weight, 1-6 parts by weight of calcium hydroxide, 5-13 parts by weight of nano molybdenum disulfide, 2-6 parts by weight of silicon oxide, 2-8 parts by weight of halloysite nanotubes, 12-18 parts by weight of paraffin Mix, place in a planetary ball mill for ball milling for 3 hours, and then dry in a vacuum drying oven for 2 hours to obtain a mixed powder; press the mixed powder, then sinter in a vacuum sintering furnace, heat to 220°C and keep warm After 1 hour, the temperature was raised to 460° C. for 3 hours, and the temperature was lowered to room temperature to obtain a self-lubricating material for joint robots.
[0021] The invention provides a self-lubricating material...
Embodiment 1
[0025] 12 parts by weight of iron powder, 8 parts by weight of Al powder, 10 parts by weight of copper sulfide powder, 11 parts by weight of graphite, 1 part by weight of calcium hydroxide, 13 parts by weight of nano molybdenum disulfide, 2 parts by weight of silicon oxide, halloysite nano 8 parts by weight of tubes and 12 parts by weight of paraffin were mixed, placed in a planetary ball mill for ball milling for 3 hours, and then placed in a vacuum drying oven to dry for 2 hours to obtain a mixed powder;
[0026] The mixed powder was compacted, then placed in a vacuum sintering furnace for sintering, heated to 220°C for 1 hour, raised to 460°C for 3 hours, and then lowered to room temperature to obtain a self-lubricating material for joint robots.
[0027] The performance of the self-lubricating material for joint robots prepared in this embodiment was tested, and the coefficient of friction at 100° C. was 0.076.
Embodiment 2
[0029] 18 parts by weight of iron powder, 3 parts by weight of Al powder, 16 parts by weight of copper sulfide powder, 6 parts by weight of graphite, 6 parts by weight of calcium hydroxide, 5 parts by weight of nano molybdenum disulfide, 6 parts by weight of silicon oxide, halloysite nano 2 parts by weight of the tube and 18 parts by weight of paraffin were mixed, placed in a planetary ball mill for ball milling for 3 hours, and then placed in a vacuum drying oven for 2 hours to obtain a mixed powder;
[0030] The mixed powder was compacted, then placed in a vacuum sintering furnace for sintering, heated to 220°C for 1 hour, raised to 460°C for 3 hours, and then lowered to room temperature to obtain a self-lubricating material for joint robots.
[0031] The performance of the self-lubricating material for joint robots prepared in this example was tested, and the coefficient of friction at 100° C. was 0.072.
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