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Recent advances in the development of SiC/SiC as a fusion structural material

R.H Jones, L.L Snead, A Kohyama, P Fenici1998年Fusion Engineering and DesignIF 1.7出版社

AbstractSilicon carbide composites are attractive for structural applications in fusion energy systems because of their low activation and afterheat characteristics coupled with their excellent high-temperature properties. These new materials will require optimization of their hermeticity, thermal conductivity, radiation stability, chemical compatibility with fusion relevant environments, and joining methodology before they can be utilized effectively in a fusion energy system. Recent advances have been demonstrated for advanced SiC fibers and fiber/matrix interfaces. Improved creep resistance and radiation stability have been demonstrated for Hi-Nicalon, Nicalon-S and DOW/Corning Sylramic fibers. Advanced fiber/matrix interfaces made with porous SiC and multi-layer SiC/C/SiC are being developed to minimize the presence of C in the interface for improved radiation and chemical stability of the composite materials. There have also been advances in evaluating He effects in SiC/SiC composites, the effects of 26Al on activation of SiC and joining methodology for SiC/SiC composites. These advances continue to support the promise of these advanced composite materials for fusion energy applications.

日本語訳

炭化ケイ素複合材料は、その低放射化特性と優れた高温特性により、核融合エネルギーシステムにおける構造材料として魅力的である。これらの新材料は、気密性、熱伝導率、放射線安定性、核融合関連環境との化学的適合性、および接合技術の最適化が求められるであろう。近年、先進的なSiC繊維および繊維/マトリックス界面において進歩が実証されている。Hi-Nicalon、Nicalon-S、およびDOW/Corning Sylramic繊維について、改善されたクリープ特性と放射線安定性が実証されている。多孔質SiCおよび多層SiC/C/SiCからなる先進的な繊維/マトリックス界面は、複合材料の放射線および化学的安定性を向上させるため、界面におけるCの存在を最小限に抑えることを目的として開発が進められている。さらに、SiC/SiC複合材料におけるHeの影響評価、SiCの放射化に対する26Alの影響評価、およびSiC/SiC複合材料の接合技術の評価においても進展が見られている。これらの進歩は、核融合エネルギー応用に向けた先進複合材料の可能性を引き続き支持するものである。

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