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Investigation of Microstructure and Nanoindentation Hardness of C(+) & He(+) Irradiated Nanocrystal SiC Coatings during Annealing and Corrosion

The microstructure and nanoindentation hardness of unirradiated, irradiated, annealed and corroded SiC coatings were characterized. Irradiation of 400 keV C(+) and 200 keV He(+) with approximately 10 dpa did not cause obvious amorphous transformation to nanocrystal SiC coatings and induced helium bu...

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Autores principales: Liu, Guiliang, Li, Yipeng, He, Zongbei, Chen, Yang, Cong, Shuo, Chen, Zhaoke, Huang, Xiuyin, Zhang, Ruiqian, Ran, Guang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7730375/
https://www.ncbi.nlm.nih.gov/pubmed/33291352
http://dx.doi.org/10.3390/ma13235567
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author Liu, Guiliang
Li, Yipeng
He, Zongbei
Chen, Yang
Cong, Shuo
Chen, Zhaoke
Huang, Xiuyin
Zhang, Ruiqian
Ran, Guang
author_facet Liu, Guiliang
Li, Yipeng
He, Zongbei
Chen, Yang
Cong, Shuo
Chen, Zhaoke
Huang, Xiuyin
Zhang, Ruiqian
Ran, Guang
author_sort Liu, Guiliang
collection PubMed
description The microstructure and nanoindentation hardness of unirradiated, irradiated, annealed and corroded SiC coatings were characterized. Irradiation of 400 keV C(+) and 200 keV He(+) with approximately 10 dpa did not cause obvious amorphous transformation to nanocrystal SiC coatings and induced helium bubbles with 2–3 nm dimension distributed uniformly in the SiC matrix. High temperature annealing resulted in the transformation of SiC nanocrystals into columnar crystals in the irradiated region. Line-shaped bubble bands formed at the columnar crystal boundaries and their stacking fault planes and made the formation of microcracks of hundreds of nanometers in length. Meanwhile, some isolated helium bubbles distributed in SiC grains still maintained a size of 2–3 nm, despite annealing at 1200 °C for 5 h. The SiC coating showed excellent corrosion resistance under high-temperature, high-pressure water. The weight of the sample decreased with the increase of corrosion time. The nanoindentation hardness and the elastic modulus increased significantly with C(+) and He(+) irradiation, while their values decreased with high-temperature annealing. An increase in the annealing temperature led to an increased reduction in the values. Corrosion caused the decrease of nanoindentation hardness and the elastic modulus in the whole test depth range, whether the samples were irradiated or unirradiated.
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spelling pubmed-77303752020-12-12 Investigation of Microstructure and Nanoindentation Hardness of C(+) & He(+) Irradiated Nanocrystal SiC Coatings during Annealing and Corrosion Liu, Guiliang Li, Yipeng He, Zongbei Chen, Yang Cong, Shuo Chen, Zhaoke Huang, Xiuyin Zhang, Ruiqian Ran, Guang Materials (Basel) Article The microstructure and nanoindentation hardness of unirradiated, irradiated, annealed and corroded SiC coatings were characterized. Irradiation of 400 keV C(+) and 200 keV He(+) with approximately 10 dpa did not cause obvious amorphous transformation to nanocrystal SiC coatings and induced helium bubbles with 2–3 nm dimension distributed uniformly in the SiC matrix. High temperature annealing resulted in the transformation of SiC nanocrystals into columnar crystals in the irradiated region. Line-shaped bubble bands formed at the columnar crystal boundaries and their stacking fault planes and made the formation of microcracks of hundreds of nanometers in length. Meanwhile, some isolated helium bubbles distributed in SiC grains still maintained a size of 2–3 nm, despite annealing at 1200 °C for 5 h. The SiC coating showed excellent corrosion resistance under high-temperature, high-pressure water. The weight of the sample decreased with the increase of corrosion time. The nanoindentation hardness and the elastic modulus increased significantly with C(+) and He(+) irradiation, while their values decreased with high-temperature annealing. An increase in the annealing temperature led to an increased reduction in the values. Corrosion caused the decrease of nanoindentation hardness and the elastic modulus in the whole test depth range, whether the samples were irradiated or unirradiated. MDPI 2020-12-06 /pmc/articles/PMC7730375/ /pubmed/33291352 http://dx.doi.org/10.3390/ma13235567 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Liu, Guiliang
Li, Yipeng
He, Zongbei
Chen, Yang
Cong, Shuo
Chen, Zhaoke
Huang, Xiuyin
Zhang, Ruiqian
Ran, Guang
Investigation of Microstructure and Nanoindentation Hardness of C(+) & He(+) Irradiated Nanocrystal SiC Coatings during Annealing and Corrosion
title Investigation of Microstructure and Nanoindentation Hardness of C(+) & He(+) Irradiated Nanocrystal SiC Coatings during Annealing and Corrosion
title_full Investigation of Microstructure and Nanoindentation Hardness of C(+) & He(+) Irradiated Nanocrystal SiC Coatings during Annealing and Corrosion
title_fullStr Investigation of Microstructure and Nanoindentation Hardness of C(+) & He(+) Irradiated Nanocrystal SiC Coatings during Annealing and Corrosion
title_full_unstemmed Investigation of Microstructure and Nanoindentation Hardness of C(+) & He(+) Irradiated Nanocrystal SiC Coatings during Annealing and Corrosion
title_short Investigation of Microstructure and Nanoindentation Hardness of C(+) & He(+) Irradiated Nanocrystal SiC Coatings during Annealing and Corrosion
title_sort investigation of microstructure and nanoindentation hardness of c(+) & he(+) irradiated nanocrystal sic coatings during annealing and corrosion
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7730375/
https://www.ncbi.nlm.nih.gov/pubmed/33291352
http://dx.doi.org/10.3390/ma13235567
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