Machining performance of hard-brittle materials by multi-layer micro-nano crystalline diamond coated tools
Single layer diamond coatings, deposited on cobalt cemented tungsten carbide (WC-Co), with CH4 concentrations of 1%, 3% and 5% were prepared, by hot filament chemical vapor deposition (HFCVD). Moreover, according to the characteristics of different kinds of diamond structure, observed on the single...
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doaj-cdcb4be456c648ddb3a507024704fa0e2020-11-25T00:56:11ZengElsevierResults in Physics2211-37972019-06-0113Machining performance of hard-brittle materials by multi-layer micro-nano crystalline diamond coated toolsGuangyu Yan0Yuhou Wu1Daniel Cristea2Feng Lu3Yibao Wang4Dehong Zhao5Mircea Tierean6Lusheng Liu7Faculty of Mechanical Engineering, Shenyang Jianzhu University, 110168 Shenyang, ChinaFaculty of Mechanical Engineering, Shenyang Jianzhu University, 110168 Shenyang, China; Corresponding authors.Materials Science Department, Transilvania University, 500036 Brasov, RomaniaFaculty of Mechanical Engineering, Shenyang Jianzhu University, 110168 Shenyang, ChinaShenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 110016 Shenyang, ChinaFaculty of Mechanical Engineering, Shenyang Jianzhu University, 110168 Shenyang, ChinaMaterials Engineering and Welding Department, Transilvania University, 500036 Brasov, RomaniaShenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 110016 Shenyang, China; Corresponding authors.Single layer diamond coatings, deposited on cobalt cemented tungsten carbide (WC-Co), with CH4 concentrations of 1%, 3% and 5% were prepared, by hot filament chemical vapor deposition (HFCVD). Moreover, according to the characteristics of different kinds of diamond structure, observed on the single layer coatings, multi-layer crystalline diamond films with micro-nano structures (composed of the 1% and 5%-type coatings) were prepared. The objective was to cumulate the increased interfacial adhesion and mechanical properties of each single layer diamond coating, into one multilayer coating, capable of resisting the efforts present between a milling tool and a hard-brittle material (natural marble). The coating morphology, structure, and resistance to crack propagation of the diamond films were evaluated. Furthermore, cutting tests with diamond-coated tools were performed, while observing the machining life and wear mechanism, on a hard-brittle material (marble). The results on the single layers showed that with the increase of the concentration of CH4, the adhesion to the WC-Co substrate, as well as the resistance to crack propagation is decreasing. The multilayer coating structure shows benefits from the single layer coatings, i.e. improved adhesion to the substrate and inhibition of crack propagation, while the tool life and machining stability are significantly better than the single diamond layer coated tools. Keywords: HFCVD, Diamond coating, Multilayer, Cutting tool, Hard-brittle materialhttp://www.sciencedirect.com/science/article/pii/S2211379719307417 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Guangyu Yan Yuhou Wu Daniel Cristea Feng Lu Yibao Wang Dehong Zhao Mircea Tierean Lusheng Liu |
spellingShingle |
Guangyu Yan Yuhou Wu Daniel Cristea Feng Lu Yibao Wang Dehong Zhao Mircea Tierean Lusheng Liu Machining performance of hard-brittle materials by multi-layer micro-nano crystalline diamond coated tools Results in Physics |
author_facet |
Guangyu Yan Yuhou Wu Daniel Cristea Feng Lu Yibao Wang Dehong Zhao Mircea Tierean Lusheng Liu |
author_sort |
Guangyu Yan |
title |
Machining performance of hard-brittle materials by multi-layer micro-nano crystalline diamond coated tools |
title_short |
Machining performance of hard-brittle materials by multi-layer micro-nano crystalline diamond coated tools |
title_full |
Machining performance of hard-brittle materials by multi-layer micro-nano crystalline diamond coated tools |
title_fullStr |
Machining performance of hard-brittle materials by multi-layer micro-nano crystalline diamond coated tools |
title_full_unstemmed |
Machining performance of hard-brittle materials by multi-layer micro-nano crystalline diamond coated tools |
title_sort |
machining performance of hard-brittle materials by multi-layer micro-nano crystalline diamond coated tools |
publisher |
Elsevier |
series |
Results in Physics |
issn |
2211-3797 |
publishDate |
2019-06-01 |
description |
Single layer diamond coatings, deposited on cobalt cemented tungsten carbide (WC-Co), with CH4 concentrations of 1%, 3% and 5% were prepared, by hot filament chemical vapor deposition (HFCVD). Moreover, according to the characteristics of different kinds of diamond structure, observed on the single layer coatings, multi-layer crystalline diamond films with micro-nano structures (composed of the 1% and 5%-type coatings) were prepared. The objective was to cumulate the increased interfacial adhesion and mechanical properties of each single layer diamond coating, into one multilayer coating, capable of resisting the efforts present between a milling tool and a hard-brittle material (natural marble). The coating morphology, structure, and resistance to crack propagation of the diamond films were evaluated. Furthermore, cutting tests with diamond-coated tools were performed, while observing the machining life and wear mechanism, on a hard-brittle material (marble). The results on the single layers showed that with the increase of the concentration of CH4, the adhesion to the WC-Co substrate, as well as the resistance to crack propagation is decreasing. The multilayer coating structure shows benefits from the single layer coatings, i.e. improved adhesion to the substrate and inhibition of crack propagation, while the tool life and machining stability are significantly better than the single diamond layer coated tools. Keywords: HFCVD, Diamond coating, Multilayer, Cutting tool, Hard-brittle material |
url |
http://www.sciencedirect.com/science/article/pii/S2211379719307417 |
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