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Article

Enhanced Wear Resistance and Thermal Dissipation of Copper–Graphene Composite Coatings via Pulsed Electrodeposition for Circuit Breaker Applications

Department of Enterprise Engineering “Mario Lucertini”, University of Rome Tor Vergata, 00133 Rome, Italy
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Author to whom correspondence should be addressed.
Materials 2024, 17(23), 6017; https://doi.org/10.3390/ma17236017
Submission received: 11 November 2024 / Revised: 20 November 2024 / Accepted: 28 November 2024 / Published: 9 December 2024
(This article belongs to the Special Issue Advanced Coating Research for Metal Surface Protection)

Abstract

Copper, though highly conductive, requires improved wear resistance and thermal dissipation in applications that involve continuous movement and current-induced vibrations, such as power breakers. Conventional solutions, such as copper–tungsten alloys or lubricant use, face limitations in durability, friction, or environmental impact. This study explores the development of copper–graphene (Cu-GNPs) composite coatings using pulsed electrodeposition to enhance the tribological, thermal, and mechanical properties of circuit breaker components by adopting an industrially scalable technique. The influence of deposition bath temperature, duty cycle, and frequency on coating morphology, hardness, wear resistance, and heat dissipation was systematically evaluated using a 23 full factorial design and an Analysis of Variance (ANOVA). The results revealed that optimized pulsed electrodeposition significantly improved coating performance: hardness increased by 76%, wear volume decreased by more than 99%, and friction coefficient stabilized at 0.2, reflecting effective graphene integration. The addition of graphene further improved thermal diffusivity by 19.5%, supporting superior heat dissipation. These findings suggest that pulsed copper–graphene composite coatings offer a promising alternative to traditional copper alloys, enhancing the lifespan and reliability of electronic components through improved wear resistance, lower friction, and superior heat transfer.
Keywords: composite coating; ANOVA; tribology; electrodeposition; graphene nanoplatelets composite coating; ANOVA; tribology; electrodeposition; graphene nanoplatelets

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MDPI and ACS Style

Almonti, D.; Salvi, D.; Ucciardello, N.; Vesco, S. Enhanced Wear Resistance and Thermal Dissipation of Copper–Graphene Composite Coatings via Pulsed Electrodeposition for Circuit Breaker Applications. Materials 2024, 17, 6017. https://doi.org/10.3390/ma17236017

AMA Style

Almonti D, Salvi D, Ucciardello N, Vesco S. Enhanced Wear Resistance and Thermal Dissipation of Copper–Graphene Composite Coatings via Pulsed Electrodeposition for Circuit Breaker Applications. Materials. 2024; 17(23):6017. https://doi.org/10.3390/ma17236017

Chicago/Turabian Style

Almonti, Daniele, Daniel Salvi, Nadia Ucciardello, and Silvia Vesco. 2024. "Enhanced Wear Resistance and Thermal Dissipation of Copper–Graphene Composite Coatings via Pulsed Electrodeposition for Circuit Breaker Applications" Materials 17, no. 23: 6017. https://doi.org/10.3390/ma17236017

APA Style

Almonti, D., Salvi, D., Ucciardello, N., & Vesco, S. (2024). Enhanced Wear Resistance and Thermal Dissipation of Copper–Graphene Composite Coatings via Pulsed Electrodeposition for Circuit Breaker Applications. Materials, 17(23), 6017. https://doi.org/10.3390/ma17236017

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