Modelling the erosion of electron beam physical vapour deposited thermal barrier coatings
Since the introduction of electron beam (EB) physical vapour deposition (PVD) thermal barrier coatings (TBCs) and their application to moving components in the hot gas stream, erosion has become a prime concern. EB PVD TBCs, due to their unique columnar microstructure are far more strain tolerant th...
Main Author: | |
---|---|
Other Authors: | |
Language: | en |
Published: |
Cranfield University
2016
|
Online Access: | http://dspace.lib.cranfield.ac.uk/handle/1826/10541 |
id |
ndltd-CRANFIELD1-oai-dspace.lib.cranfield.ac.uk-1826-10541 |
---|---|
record_format |
oai_dc |
spelling |
ndltd-CRANFIELD1-oai-dspace.lib.cranfield.ac.uk-1826-105412016-09-20T03:26:29ZModelling the erosion of electron beam physical vapour deposited thermal barrier coatingsWellman , RichardSince the introduction of electron beam (EB) physical vapour deposition (PVD) thermal barrier coatings (TBCs) and their application to moving components in the hot gas stream, erosion has become a prime concern. EB PVD TBCs, due to their unique columnar microstructure are far more strain tolerant than their plasma sprayed (PS) counter parts and can thus be used under more exacting operating conditions. It is under these operating conditions that erosion of the coated components is of primary importance. The main aim of this project was the development of a computer model capable of predicting the erosion rate of EB PVD TBCs under various different conditions. I order to do this it was first necessary to determine the erosion mechanisms of EB PVD TBCs as well as their mechanical properties. Steady state erosion and single impact studies together with SEM were used to determine the erosion mechanisms, while nano indentation techniques were used to obtain the hardness and the Youngs Modulus of the EB PVD TBC. Literature searches contributed to the understanding of erosion principles and factors affecting erosion. All these findings were then used in the development of a Monte-Carlo type computational erosion model capable of predicting the erosive wear rate of EB PVD TBCs under various conditions. The model which has been developed' is capable of predicting the erosion rate of EB PVD TBC to within 30%, so long as the erosion falls within a certain defined mechanism, which can easily be checked against a erosion map, which has been drawn.Cranfield UniversityNicholls, John2016-09-19T09:16:06Z2016-09-19T09:16:06Z2001Thesis or dissertationDoctoralPhDhttp://dspace.lib.cranfield.ac.uk/handle/1826/10541en© Cranfield University, 2001. All rights reserved. No part of this publication may be reproduced without the written permission of the copyright holder. |
collection |
NDLTD |
language |
en |
sources |
NDLTD |
description |
Since the introduction of electron beam
(EB) physical vapour deposition (PVD) thermal
barrier
coatings (TBCs) and their application to moving components in the hot gas
stream, erosion has become a prime concern. EB PVD TBCs, due to their unique
columnar microstructure are far more strain tolerant than their plasma sprayed (PS)
counter
parts and can thus be used under more exacting operating conditions. It is under
these
operating conditions that erosion of the coated components is of primary
importance.
The main aim of this
project was the development of a computer model capable of
predicting the erosion rate of EB PVD TBCs under various different conditions. I
order to do this it was first
necessary to determine the erosion mechanisms of EB PVD
TBCs as well as their mechanical
properties. Steady state erosion and single impact
studies
together with SEM were used to determine the erosion mechanisms, while nano
indentation
techniques were used to obtain the hardness and the Youngs Modulus of the
EB PVD TBC. Literature searches contributed to the
understanding of erosion
principles and factors affecting erosion.
All these
findings were then used in the development of a Monte-Carlo type
computational erosion model capable of predicting the erosive wear rate of EB PVD
TBCs under various conditions. The model which has been
developed' is capable of
predicting the erosion rate of EB PVD TBC to within 30%, so long as the erosion falls
within a certain defined mechanism, which can easily be checked against a erosion
map, which has been drawn. |
author2 |
Nicholls, John |
author_facet |
Nicholls, John Wellman , Richard |
author |
Wellman , Richard |
spellingShingle |
Wellman , Richard Modelling the erosion of electron beam physical vapour deposited thermal barrier coatings |
author_sort |
Wellman , Richard |
title |
Modelling the erosion of electron beam physical vapour deposited thermal barrier coatings |
title_short |
Modelling the erosion of electron beam physical vapour deposited thermal barrier coatings |
title_full |
Modelling the erosion of electron beam physical vapour deposited thermal barrier coatings |
title_fullStr |
Modelling the erosion of electron beam physical vapour deposited thermal barrier coatings |
title_full_unstemmed |
Modelling the erosion of electron beam physical vapour deposited thermal barrier coatings |
title_sort |
modelling the erosion of electron beam physical vapour deposited thermal barrier coatings |
publisher |
Cranfield University |
publishDate |
2016 |
url |
http://dspace.lib.cranfield.ac.uk/handle/1826/10541 |
work_keys_str_mv |
AT wellmanrichard modellingtheerosionofelectronbeamphysicalvapourdepositedthermalbarriercoatings |
_version_ |
1718384119855972352 |