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  4. High dynamic stiffness mechanical structures with nanostructured composite coatings deposited by high power impulse magnetron sputtering
 
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2016
Journal Article
Title

High dynamic stiffness mechanical structures with nanostructured composite coatings deposited by high power impulse magnetron sputtering

Abstract
Nanostructured Cu:CuCNx composite coatings with high static and dynamic stiffness were synthesized by means of plasma-enhanced chemical vapor deposition (PECVD) combined with high power impulse magnetron sputtering (HiPIMS). Scanning electron microscope (SEM) images and energy-dispersive X-ray spectroscopy (EDS) mapping from cross-sectioned samples reveals a multi-layered nanostructure enriched in Cu, C, N, and O in different ratios. Mechanical properties of the coatings were investigated by Vickers micro-indention and model tests. It was observed that copper inclusions as well as copper interlayers in the CNx matrix can increase mechanical damping by up to 160%. Mechanical properties such as hardness, elastic modulus and loss factor were significantly improved by increasing the discharge power of the sputtering process. Moreover the coatings loss modulus was evaluated on the basis of indentation creep measurements under room temperature. The coating with optimum properties exhibited loss modulus of 2.6 GPa. The composite with the highest damping loss modulus were applied on the clamping region of a milling machining tool to verify their effect in suppressing regenerative tool chatter. The high dynamic stiffness coatings were found to effectively improve the critical stability limit of a milling tool by at least 300%, suggesting a significant increase of the dynamic stiffness.
Author(s)
Fu, Qilin
KTH Royal Institute of Technology, Sweden
Lorite, Gabriela Simone
University of Oulu, Finland
Rashid, M. Masud-Ur
KTH Royal Institute of Technology, Sweden
Neuhaus, Raphael  
Fraunhofer-Institut für Produktionstechnik und Automatisierung IPA  
Cada, Martin
Fyzikalní ústav AV CR, Czech Republic
Hubicka, Zdenek
Fyzikalní ústav AV CR, Czech Republic
Pitkänen, Olli
University of Oulu, Finland
Selkälä, Tuula
University of Oulu, Finland
Uusitalo, Juha
University of Oulu, Finland
Glanz, Carsten  
Fraunhofer-Institut für Produktionstechnik und Automatisierung IPA  
Kolaric, Ivica  
Fraunhofer-Institut für Produktionstechnik und Automatisierung IPA  
Kordas, Krisztian
University of Oulu, Finland
Nicolescu, Cornel Mihai
KTH Royal Institute of Technology, Sweden
Toth, Geza
University of Oulu, Finland
Journal
Carbon  
Project(s)
HIPPOCAMP
Funder
European Commission EC  
Open Access
File(s)
Download (2.28 MB)
Rights
CC BY-NC-ND 4.0: Creative Commons Attribution-NonCommercial-NoDerivatives
DOI
10.1016/j.carbon.2015.10.074
10.24406/publica-r-241610
Additional link
Full text
Language
English
Fraunhofer-Institut für Produktionstechnik und Automatisierung IPA  
Keyword(s)
  • Nanobeschichtung

  • Nanomaterialbeschichtung

  • Werkstoffgefüge

  • Dämpfung

  • Werkstoffprüfung

  • Beschichtungstechnik

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