The Role of Rare Earth Lanthanum Oxide in Polymeric Matrix Brake Composites to Replace Copper.

Polymers (Basel)

School of Mechanical Engineering and Automation, Fuzhou University, Fuzhou 350116, China.

Published: September 2018

AI Article Synopsis

  • Current research in polymeric matrix brake composites is focused on finding a replacement for copper, a material now known to pose health and environmental risks.
  • The paper investigates the use of rare earth lanthanum oxide as a potential substitute, examining how it affects the properties of the brake composites.
  • The study finds that brake composites containing 15 wt% lanthanum oxide, with no copper, demonstrate optimal tribological properties, resulting from favorable reactions during friction that enhance performance at high temperatures.

Article Abstract

The main focus of current research in polymeric matrix brake composites is on searching out a replacement for copper, which has been recently proved to be a hazard to human health and the environment. In this paper, rare earth lanthanum oxide was explored for the replacement of copper in composites. The mechanism of the role of lanthanum oxide in brake composites to replace copper was analyzed. Four series of polymeric matrix brake composites with various amounts of copper (15, 10, 5 and 0 wt %) and rare earth lanthanum oxide (0, 5, 10 and 15 wt %) were developed, in which the copper was gradually replaced by lanthanum oxide in the formula. These series were characterized in terms of physical, thermo-physical and mechanical properties. The results show that lanthanum oxide can be successfully used as a replacement for copper in brake composites. Brake composites with 15 wt % lanthanum oxide that are copper-free are considered optimal, where tribo-properties are considered best. Compared with the addition of copper in brake composites, lanthanum oxide is more conducive to the formation of compacted friction films and transfer films, which is beneficial to the tribological properties of the brake composites. The addition of La₂O₃ to the brake composites can cause the reaction between La₂O₃ and Al₂O₃ to form LaAlO₃, and the reaction between Al₂O₃ and BaSO₄ can produce BaAlO and Al₂SO₄ during the friction and wear processes, which can effectively improve the tribological properties of the brake composites at elevated temperature. This research was contributive to the copper-free, metal-free and eco-friendly brake composites.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6403813PMC
http://dx.doi.org/10.3390/polym10091027DOI Listing

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