Elastic yttria-stabilized zirconia nanofibrous aerogels for high-temperature thermal insulation; Journal of Physics: Conference Series; Vol. 3068 : 12th International Conference on Advanced Manufacturing Technology and Materials Engineering (AMTME 2025) 21/03/2025 - 23/03/2025 Guangzhou, China

Sonraí bibleagrafaíochta
Parent link:Journal of Physics: Conference Series.— .— Bristol: IOP Publishing, 2008-.— 1742-6596
Vol. 3068 : 12th International Conference on Advanced Manufacturing Technology and Materials Engineering (AMTME 2025) 21/03/2025 - 23/03/2025 Guangzhou, China.— 2025.— Article number 012127, 8 p.
Údar corparáideach: Национальный исследовательский Томский политехнический университет Исследовательская школа химических и биомедицинских технологий
Rannpháirtithe: Xin Qi, Surmenev R. A. Roman Anatolievich, Wu Fan, Liu Yitao
Achoimre:Title screen
The competition in large-scale space development has intensified in recent years. Hypersonic vehicle rivalry has now become a matter of national strategic security. The extremely harsh external environment they encounter during flight poses hitherto unprecedented challenges to thermal insulation materials, a pivotal supporting technology. There is, thus, an urgent need for a new generation of thermal insulation materials to achieve a qualitative leap in thermal protection performance. We developed self-template yttrium-stabilized zirconia ceramic nanofiber aerogels (ST-6YSZ CNFAs) with a layered structure. After calcination at 1300 °C, they maintain strong mechanical properties, exhibit low thermal conductivity (0.0297 W·m−1K−1), and endure thousands of large deformations without breaking. These attributes make ST-6YSZ CNFAs highly suitable for thermal insulation in extreme environments
Текстовый файл
Teanga:Béarla
Foilsithe / Cruthaithe: 2025
Ábhair:
Rochtain ar líne:https://doi.org/10.1088/1742-6596/3068/1/012127
Formáid: Leictreonach Caibidil leabhair
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=687967

MARC

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330 |a The competition in large-scale space development has intensified in recent years. Hypersonic vehicle rivalry has now become a matter of national strategic security. The extremely harsh external environment they encounter during flight poses hitherto unprecedented challenges to thermal insulation materials, a pivotal supporting technology. There is, thus, an urgent need for a new generation of thermal insulation materials to achieve a qualitative leap in thermal protection performance. We developed self-template yttrium-stabilized zirconia ceramic nanofiber aerogels (ST-6YSZ CNFAs) with a layered structure. After calcination at 1300 °C, they maintain strong mechanical properties, exhibit low thermal conductivity (0.0297 W·m−1K−1), and endure thousands of large deformations without breaking. These attributes make ST-6YSZ CNFAs highly suitable for thermal insulation in extreme environments 
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