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Lubrication mechanism of copper-based solid self-lubricating materials by lead |
GAN Ziyang, LIU Yong, LÜ Xinqun, TAN Yanni, ZOU Jianpeng |
State Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, China |
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Abstract Using copper-tin as matrix, graphite and lead as solid lubricant, the new solid self-lubricating material was fabricated by powder metallurgy and suitable for high speed and heavy load condition. The effects of lead on high-temperature mechanical properties and tribological behavior of materials were investigated. Through investigating on the friction surface and the subsurface surface, the cooperative lubrication mechanism of lead and graphite was discussed. The results show that the hardness and tensile strength are inordinately increased by adding lead in copper graphite material. And adding Lead can increase high-temperature compression strength below 300 ℃, the compressive strength of the material at 300 ℃ is 215.3 MPa. Meanwhile, the friction stability of copper graphite material under high speed and heavy load condition can be significantly improved by adding lead, and the average friction coefficient is reduced slightly.
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Received: 12 October 2017
Published: 12 July 2019
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