Energy consumption and material fluxes in hard coating deposition processes

Hard coatings grown by physical vapor deposition (PVD) or chemical vapor deposition (CVD) on cutting tools are applied to considerably increase the tools' performance and lifetime. Besides differences in types, thicknesses, structures and properties of the coatings synthesized by PVD and CVD, t...

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Veröffentlicht in:Surface & coatings technology 2016-08, Vol.299, p.49-55
Hauptverfasser: Gassner, Martina, Rebelo de Figueiredo, Marisa, Schalk, Nina, Franz, Robert, Weiß, Christian, Rudigier, Helmut, Holzschuh, Helga, Bürgin, Werner, Pohler, Markus, Czettl, Christoph, Mitterer, Christian
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container_end_page 55
container_issue
container_start_page 49
container_title Surface & coatings technology
container_volume 299
creator Gassner, Martina
Rebelo de Figueiredo, Marisa
Schalk, Nina
Franz, Robert
Weiß, Christian
Rudigier, Helmut
Holzschuh, Helga
Bürgin, Werner
Pohler, Markus
Czettl, Christoph
Mitterer, Christian
description Hard coatings grown by physical vapor deposition (PVD) or chemical vapor deposition (CVD) on cutting tools are applied to considerably increase the tools' performance and lifetime. Besides differences in types, thicknesses, structures and properties of the coatings synthesized by PVD and CVD, the deposition processes differ significantly in their throughput of tools as well as their energy and material consumption. Within this work, a methodology to analyze the energy and material fluxes of typical PVD and CVD processes for the deposition of hard coatings on cutting tools is introduced. Three case studies are considered: (i) cathodic arc evaporation of TiCN, (ii) magnetron sputter deposition of TiN, and (iii) CVD of a TiCN/Al2O3 bilayer coating. The material fluxes and energy consumption for each process step of the respective deposition processes were monitored and are illustrated by individual Sankey diagrams. The visualization by Sankey diagrams allows to readily identify the main energy and mass consuming process steps. Finally, a normalization procedure enabling the comparison of different hard coating production routes is presented and discussed. •Energy and material fluxes of deposition processes for tool coatings analyzed•Case studies considered are arc evaporation, sputtering and chemical vapor deposition.•Sankey diagrams allow to identify the main energy and mass consuming process steps.•Normalization per coating thickness and tool allows to compare deposition processes.
doi_str_mv 10.1016/j.surfcoat.2016.04.062
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subjects Chemical vapor deposition
Coatings
CVD
Deposition
Energy consumption
Fluxes
Hard coatings
Hard surfacing
Material flux
Physical vapor deposition
PVD
Sankey diagram
Titanium carbonitride
title Energy consumption and material fluxes in hard coating deposition processes
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