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Improved Thermal Cycling Durability of Thermal Barrier Coatings Manufactured by PS-PVD
by
Mauer, G
, Vaßen, R
, Rezanka, S
in
Coatings
/ Durability
/ Electron beams
/ Electron-beam physical vapor deposition
/ Lifetime
/ Manufacturing
/ Oxidation
/ Physical vapor deposition
/ Plasma
/ Protective coatings
/ Stainless steel
/ Substrates
/ Thermal barrier coatings
/ Thermal barriers
/ Thermal cycling
/ Turbines
2014
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Improved Thermal Cycling Durability of Thermal Barrier Coatings Manufactured by PS-PVD
by
Mauer, G
, Vaßen, R
, Rezanka, S
in
Coatings
/ Durability
/ Electron beams
/ Electron-beam physical vapor deposition
/ Lifetime
/ Manufacturing
/ Oxidation
/ Physical vapor deposition
/ Plasma
/ Protective coatings
/ Stainless steel
/ Substrates
/ Thermal barrier coatings
/ Thermal barriers
/ Thermal cycling
/ Turbines
2014
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Improved Thermal Cycling Durability of Thermal Barrier Coatings Manufactured by PS-PVD
by
Mauer, G
, Vaßen, R
, Rezanka, S
in
Coatings
/ Durability
/ Electron beams
/ Electron-beam physical vapor deposition
/ Lifetime
/ Manufacturing
/ Oxidation
/ Physical vapor deposition
/ Plasma
/ Protective coatings
/ Stainless steel
/ Substrates
/ Thermal barrier coatings
/ Thermal barriers
/ Thermal cycling
/ Turbines
2014
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Improved Thermal Cycling Durability of Thermal Barrier Coatings Manufactured by PS-PVD
Journal Article
Improved Thermal Cycling Durability of Thermal Barrier Coatings Manufactured by PS-PVD
2014
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Overview
The plasma spray-physical vapor deposition (PS-PVD) process is a promising method to manufacture thermal barrier coatings (TBCs). It fills the gap between traditional thermal spray processes and electron beam physical vapor deposition (EB-PVD). The durability of PS-PVD manufactured columnar TBCs is strongly influenced by the compatibility of the metallic bondcoat (BC) and the ceramic TBC. Earlier investigations have shown that a smooth BC surface is beneficial for the durability during thermal cycling. Further improvements of the bonding between BC and TBC could be achieved by optimizing the formation of the thermally grown oxide (TGO) layer. In the present study, the parameters of pre-heating and deposition of the first coating layer were investigated in order to adjust the growth of the TGO. Finally, the durability of the PS-PVD coatings was improved while the main advantage of PS-PVD, i.e., much higher deposition rate in comparison to EB-PVD, could be maintained. For such coatings, improved thermal cycling lifetimes more than two times higher than conventionally sprayed TBCs, were measured in burner rigs at ~1250 °C/1050 °C surface/substrate exposure temperatures.
Publisher
Springer Nature B.V
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