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Article

Effect of Applied Current on Tribological Properties of Polyphenyl Ether

1
Graduate School of Science and Engineering, Kansai University, Osaka 564-8680, Japan
2
Faculty of Engineering Science, Kansai University, Osaka 564-8680, Japan
3
State Key Laboratory of Molecular Engineering of Polymers, Fudan University, Shanghai 200433, China
*
Author to whom correspondence should be addressed.
Lubricants 2025, 13(4), 173; https://doi.org/10.3390/lubricants13040173
Submission received: 25 March 2025 / Revised: 7 April 2025 / Accepted: 7 April 2025 / Published: 9 April 2025
(This article belongs to the Special Issue Synthetic Greases and Oils)

Abstract

The widespread adoption of electric vehicles (EVs) has introduced new challenges in drivetrain lubrication, particularly concerning electrical corrosion, frictional wear, and hydrogen embrittlement. While polyalphaolefin (PAO)-based lubricants are commonly used, they struggle under high-speed and high-torque conditions. In contrast, polyphenyl ether (PPE)-based lubricants offer superior wear resistance and effectively suppress hydrogen generation, making them promising for EV applications. This study examines the effects of current direction and magnitude on tribofilm formation and frictional behavior in a PPE-lubricated environment. The results show that PPE exhibits unique tribofilm adhesion characteristics influenced by electrical conditions, unlike PAO. Surface analysis reveals that the tribofilm mainly consists of amorphous carbon, and friction under an electrical bias induces PPE oxidation, with oxidation products forming more readily at the positive electrode. Tribofilm formation correlated with increased friction and wear, particularly under currents of 10 mA or higher. Although PPE is more sensitive to electrical influences than PAO, it exhibits excellent wear resistance and maintains a low coefficient of friction even under electrification. This suggests that PPE could be suitable for lubrication in electrical environments and may serve as a promising lubricant for EV drive systems and similar applications.
Keywords: electric vehicles; drivetrain lubrication; polyphenyl ether; tribofilm; electrical corrosion; friction; wear resistance; Raman analysis; XPS analysis; ToF-SMIS analysis electric vehicles; drivetrain lubrication; polyphenyl ether; tribofilm; electrical corrosion; friction; wear resistance; Raman analysis; XPS analysis; ToF-SMIS analysis

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MDPI and ACS Style

Wu, C.; Lu, R.; Tani, H.; Koganezawa, S.; Liu, X.; Cong, P. Effect of Applied Current on Tribological Properties of Polyphenyl Ether. Lubricants 2025, 13, 173. https://doi.org/10.3390/lubricants13040173

AMA Style

Wu C, Lu R, Tani H, Koganezawa S, Liu X, Cong P. Effect of Applied Current on Tribological Properties of Polyphenyl Ether. Lubricants. 2025; 13(4):173. https://doi.org/10.3390/lubricants13040173

Chicago/Turabian Style

Wu, Chencheng, Renguo Lu, Hiroshi Tani, Shinji Koganezawa, Xujun Liu, and Peihong Cong. 2025. "Effect of Applied Current on Tribological Properties of Polyphenyl Ether" Lubricants 13, no. 4: 173. https://doi.org/10.3390/lubricants13040173

APA Style

Wu, C., Lu, R., Tani, H., Koganezawa, S., Liu, X., & Cong, P. (2025). Effect of Applied Current on Tribological Properties of Polyphenyl Ether. Lubricants, 13(4), 173. https://doi.org/10.3390/lubricants13040173

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