Resistance of APS Y2O3 EBC against two artificial volcanic ash variants

Ceramic matrix composites (CMC) are being developed for next generation aero-engines to substitute conventional superalloy components. However, the synergistic attack of increasing operation temperatures and water-rich exhaust gases demands for environmental barrier coatings (EBC) for protecting CMC...

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Main Author: Mechnich, Peter
Format: Conference Object
Language:unknown
Published: 2018
Subjects:
Online Access:https://elib.dlr.de/122736/
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spelling ftdlr:oai:elib.dlr.de:122736 2024-05-19T07:42:50+00:00 Resistance of APS Y2O3 EBC against two artificial volcanic ash variants Mechnich, Peter 2018 https://elib.dlr.de/122736/ unknown Mechnich, Peter (2018) Resistance of APS Y2O3 EBC against two artificial volcanic ash variants. 42nd International Conference on Advanced Ceramics & Composites, 2018-01-21 - 2018-01-26, Daytona Beach, USA. Struktur- und Funktionskeramik Konferenzbeitrag PeerReviewed 2018 ftdlr 2024-04-25T00:46:58Z Ceramic matrix composites (CMC) are being developed for next generation aero-engines to substitute conventional superalloy components. However, the synergistic attack of increasing operation temperatures and water-rich exhaust gases demands for environmental barrier coatings (EBC) for protecting CMC components against thermochemical degradation. At DLR, a model CMC combustor liner with air-plasma-sprayed (APS) Y2O3 EBC has been demonstrated recently. Beyond heat and water-rich exhaust gases, ingestion and subsequent deposition of inorganic aerosols such volcanic ash (VA) is considered a major issue for EBC lifetime. In particular infiltration of open porosity by molten VA deposits is considered a major reason for “cold shock” fracture and subsequent EBC spallation. The behavior of APS Y2O3 EBC attacked by two test dusts similar to recent volcanic eruptions in Iceland, (Ejafjalla, 2010 and Grimsvotn, 2011), is presented in the light of phase formation, solid solubility, and microstructural evolution. APS Y2O3 EBC exhibit excellent resistance versus both VA-types at temperatures up to 1500°C at minimum. Melt infiltration is effectively mitigated by a low-permeable microstructure and rapid crystallization of Y-rich phases such as oxyapatites and silicates. Therfore, the thermochemical attack is occurring only close to the EBC surface. Conference Object Iceland German Aerospace Center: elib - DLR electronic library
institution Open Polar
collection German Aerospace Center: elib - DLR electronic library
op_collection_id ftdlr
language unknown
topic Struktur- und Funktionskeramik
spellingShingle Struktur- und Funktionskeramik
Mechnich, Peter
Resistance of APS Y2O3 EBC against two artificial volcanic ash variants
topic_facet Struktur- und Funktionskeramik
description Ceramic matrix composites (CMC) are being developed for next generation aero-engines to substitute conventional superalloy components. However, the synergistic attack of increasing operation temperatures and water-rich exhaust gases demands for environmental barrier coatings (EBC) for protecting CMC components against thermochemical degradation. At DLR, a model CMC combustor liner with air-plasma-sprayed (APS) Y2O3 EBC has been demonstrated recently. Beyond heat and water-rich exhaust gases, ingestion and subsequent deposition of inorganic aerosols such volcanic ash (VA) is considered a major issue for EBC lifetime. In particular infiltration of open porosity by molten VA deposits is considered a major reason for “cold shock” fracture and subsequent EBC spallation. The behavior of APS Y2O3 EBC attacked by two test dusts similar to recent volcanic eruptions in Iceland, (Ejafjalla, 2010 and Grimsvotn, 2011), is presented in the light of phase formation, solid solubility, and microstructural evolution. APS Y2O3 EBC exhibit excellent resistance versus both VA-types at temperatures up to 1500°C at minimum. Melt infiltration is effectively mitigated by a low-permeable microstructure and rapid crystallization of Y-rich phases such as oxyapatites and silicates. Therfore, the thermochemical attack is occurring only close to the EBC surface.
format Conference Object
author Mechnich, Peter
author_facet Mechnich, Peter
author_sort Mechnich, Peter
title Resistance of APS Y2O3 EBC against two artificial volcanic ash variants
title_short Resistance of APS Y2O3 EBC against two artificial volcanic ash variants
title_full Resistance of APS Y2O3 EBC against two artificial volcanic ash variants
title_fullStr Resistance of APS Y2O3 EBC against two artificial volcanic ash variants
title_full_unstemmed Resistance of APS Y2O3 EBC against two artificial volcanic ash variants
title_sort resistance of aps y2o3 ebc against two artificial volcanic ash variants
publishDate 2018
url https://elib.dlr.de/122736/
genre Iceland
genre_facet Iceland
op_relation Mechnich, Peter (2018) Resistance of APS Y2O3 EBC against two artificial volcanic ash variants. 42nd International Conference on Advanced Ceramics & Composites, 2018-01-21 - 2018-01-26, Daytona Beach, USA.
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