A new approach for quantifying thermal barrier effect. Case study: RE_20 enamel

Thermal barrier coatings (TBC) are designed to reduce the temperatures at the surface of metallic hot working pieces. A new refractory enamel, denoted RE_20, was developed at INCAS SA. The RE_20 is designed to protect pieces made of EI 468 superalloys. Thermal barrier effect (TBE) is frequently used...

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Main Authors: Ramona-Nicoleta TURCU, Ion PENCEA, Mihai BRANZEI, Victor MANOLIU, Adriana STEFAN, Alina Cristina POPESCU-ARGES, Mihaita IOAN, Iulian Virgil CALOTA
Format: Article
Language:English
Published: National Institute for Aerospace Research “Elie Carafoli” - INCAS 2020-12-01
Series:INCAS Bulletin
Subjects:
Online Access:https://bulletin.incas.ro/files/turcu__pencea__all__vol_12_iss_4.pdf
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spelling doaj-1df723e66874487c9a48c015d7000a832020-12-07T20:38:36ZengNational Institute for Aerospace Research “Elie Carafoli” - INCASINCAS Bulletin2066-82012247-45282020-12-0112418319410.13111/2066-8201.2020.12.4.17A new approach for quantifying thermal barrier effect. Case study: RE_20 enamelRamona-Nicoleta TURCU0Ion PENCEA1Mihai BRANZEI2Victor MANOLIU3Adriana STEFAN4Alina Cristina POPESCU-ARGES5Mihaita IOAN6Iulian Virgil CALOTA7“POLITEHNICA” University Bucharest, Materials Science and Engineering Faculty, Splaiul Independentei 313, 060042, Bucharest, Romania, ramona.turcu@upb.ro“POLITEHNICA” University Bucharest, Materials Science and Engineering Faculty, Splaiul Independentei 313, 060042, Bucharest, Romania, ini.pencea@gmail.com“POLITEHNICA” University Bucharest, Materials Science and Engineering Faculty, Splaiul Independentei 313, 060042, Bucharest, Romania, mihai.branzei@upb.roAEROSPACE Consulting, B-dul Iuliu Maniu 220, Bucharest 061126, Romania, manoliu.victor@incas.roINCAS – National Institute for Aerospace Research “Elie Carafoli”, B-dul Iuliu Maniu 220, Bucharest 061126, Romania, stefan.adriana@incas.ro“POLITEHNICA” University Bucharest, Doctoral School of the Materials Science and Engineering Faculty, Splaiul Independentei 313, 060042, Bucharest, Romania, arges_alina@yahoo.com“POLITEHNICA” University Bucharest, Doctoral School of the Materials Science and Engineering Faculty, Splaiul Independentei 313, 060042, Bucharest, Romania, mihaita.ioan@gmail.comACREDICERT Company, B-dul Camil Ressu 57A, Bucharest 031745, Romania, ivcalota@gmail.comThermal barrier coatings (TBC) are designed to reduce the temperatures at the surface of metallic hot working pieces. A new refractory enamel, denoted RE_20, was developed at INCAS SA. The RE_20 is designed to protect pieces made of EI 468 superalloys. Thermal barrier effect (TBE) is frequently used in the literature to refer to the temperature decreasing at the heat exposed surface, but it is not defined as a quantitative measurand. The paper aims to mitigate this shortcoming by introducing two measurands for a proper assessment of the TBE i.e. relative temperature decreasing (RTD) and relative heat flow decreasing (RHD). The TBE depends on the working temperature, therefore it has to be estimated at elevate temperatures in the 900-1100oC range. This is possible only through thermal diffusivity flash method (ThDM) which facilitates measurements up to 1000oC. Two mathematical models were derived for RTD and RHD. The models were applied to the RE_20/ EI868 systems for two cases: as obtained and as cyclic thermal shock tested at 900oC. The paper addresses the following novelties: two new measurands (RTD, RHD), the TBE behavior depending on the working temperature and the TBE dependance on upper temperature of the thermal shock.https://bulletin.incas.ro/files/turcu__pencea__all__vol_12_iss_4.pdfthermal barrier coatingsthermal barrier effectthermal diffusivity flash methodrefractory enamelturbo reactor enginethermal shock test
collection DOAJ
language English
format Article
sources DOAJ
author Ramona-Nicoleta TURCU
Ion PENCEA
Mihai BRANZEI
Victor MANOLIU
Adriana STEFAN
Alina Cristina POPESCU-ARGES
Mihaita IOAN
Iulian Virgil CALOTA
spellingShingle Ramona-Nicoleta TURCU
Ion PENCEA
Mihai BRANZEI
Victor MANOLIU
Adriana STEFAN
Alina Cristina POPESCU-ARGES
Mihaita IOAN
Iulian Virgil CALOTA
A new approach for quantifying thermal barrier effect. Case study: RE_20 enamel
INCAS Bulletin
thermal barrier coatings
thermal barrier effect
thermal diffusivity flash method
refractory enamel
turbo reactor engine
thermal shock test
author_facet Ramona-Nicoleta TURCU
Ion PENCEA
Mihai BRANZEI
Victor MANOLIU
Adriana STEFAN
Alina Cristina POPESCU-ARGES
Mihaita IOAN
Iulian Virgil CALOTA
author_sort Ramona-Nicoleta TURCU
title A new approach for quantifying thermal barrier effect. Case study: RE_20 enamel
title_short A new approach for quantifying thermal barrier effect. Case study: RE_20 enamel
title_full A new approach for quantifying thermal barrier effect. Case study: RE_20 enamel
title_fullStr A new approach for quantifying thermal barrier effect. Case study: RE_20 enamel
title_full_unstemmed A new approach for quantifying thermal barrier effect. Case study: RE_20 enamel
title_sort new approach for quantifying thermal barrier effect. case study: re_20 enamel
publisher National Institute for Aerospace Research “Elie Carafoli” - INCAS
series INCAS Bulletin
issn 2066-8201
2247-4528
publishDate 2020-12-01
description Thermal barrier coatings (TBC) are designed to reduce the temperatures at the surface of metallic hot working pieces. A new refractory enamel, denoted RE_20, was developed at INCAS SA. The RE_20 is designed to protect pieces made of EI 468 superalloys. Thermal barrier effect (TBE) is frequently used in the literature to refer to the temperature decreasing at the heat exposed surface, but it is not defined as a quantitative measurand. The paper aims to mitigate this shortcoming by introducing two measurands for a proper assessment of the TBE i.e. relative temperature decreasing (RTD) and relative heat flow decreasing (RHD). The TBE depends on the working temperature, therefore it has to be estimated at elevate temperatures in the 900-1100oC range. This is possible only through thermal diffusivity flash method (ThDM) which facilitates measurements up to 1000oC. Two mathematical models were derived for RTD and RHD. The models were applied to the RE_20/ EI868 systems for two cases: as obtained and as cyclic thermal shock tested at 900oC. The paper addresses the following novelties: two new measurands (RTD, RHD), the TBE behavior depending on the working temperature and the TBE dependance on upper temperature of the thermal shock.
topic thermal barrier coatings
thermal barrier effect
thermal diffusivity flash method
refractory enamel
turbo reactor engine
thermal shock test
url https://bulletin.incas.ro/files/turcu__pencea__all__vol_12_iss_4.pdf
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