Elevated Temperature Tribological Behavior of Duplex Layer CrN/DLC and Nano Multilayer DLC-W Coatings Deposited on Carburized and Hardened 16MnCr5 Steel

Author:

Kolawole Funsho Olaitan1ORCID,Kolawole Shola Kolade2,Fukumasu Newton Kiyoshi3,Varela Luis Bernardo1,Vencovsky Paulo Konrad4,Ludewigs Danilo Assad4,de Souza Roberto Martins3ORCID,Tschiptschin André Paulo1ORCID

Affiliation:

1. Metallurgical and Materials Engineering Department, University of São Paulo, São Paulo 05508-030, Brazil

2. National Agency for Science and Engineering Infrastructure, Abuja 900106, Nigeria

3. Surface Phenomena Laboratory, Polytechnic School of the University of Sao Paulo, São Paulo 05508-030, Brazil

4. HEF Durferrit do Brasil Quimica LTDA, R. 27 de Março, 91-Canhema, Diadema 00941-450, Brazil

Abstract

This study investigates the impact of temperature on the tribological performance of duplex layer CrN/DLC and nano-multilayers DLC-W coatings deposited using hybrid PVD-PECVD techniques on carburized and hardened 16MnCr5 discs cut from internal combustion engines valve tappets. Reciprocating dry sliding experiments were conducted at 25 °C, 150 °C, 200 °C, and 250 °C to analyze the high-temperature tribological behavior of the coatings. The wear mechanisms were characterized using SEM, EDS mapping, Raman spectroscopy, and nanoindentation. The lowest coefficient of friction was obtained for CrN/DLC at 25 °C. The CrN/DLC coefficients of friction (COF) increase with temperatures due to increasing adhesive wear. Similarly, DLC-W exhibited a comparable trend with increasing temperature from 25 °C to 250 °C. Both coatings’ wear resistance decreased with higher temperatures due to the transformation of sp3 C bonds to sp2 C bonds, facilitating the plastic deformation of the coatings and afterward of the substrate. The CrN/DLC displayed superior wear resistance to the DLC-W coating across all temperatures. The DLC-W multilayer coating showed poor wear resistance above 150 °C, being completely removed during the testing. Compared to both coatings, the uncoated 16MnCr5 discs exhibited higher coefficients of friction and wear rates at all temperatures. Predominant wear mechanisms observed in the coated discs were adhesive and abrasive. The study revealed a decrease in the coatings’ structural and mechanical properties with rising temperatures. Hard abrasive WC particles were identified as contributing to increased wear rates in the multilayer DLC-W coatings.

Funder

Fundação de Apoio à Universidade de São Paulo

Petroleum Technology Development Funds (PTDF)

Nigeria and Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)—Brazil

FAPESP Thematic Project

Publisher

MDPI AG

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