階層的なクラックバッファリングは,ユーテクティックなヘリングボンの高エントロピー合金における3倍の柔らかさである
Peijian Shi1, Runguang Li2, Yi Li1
1State Key Laboratory of Advanced Special Steel, Shanghai Key Laboratory of Advanced Ferrometallurgy, School of Materials Science and Engineering, Shanghai University, Shanghai, China.
まとめ
この研究は,ミクロクラークを自己緩衝するヘリングボーン構造を持つ新しいエウテクティック高エントロピー合金 (EHEA) を導入します. この材料は特殊なクラック耐性と高い伸長性を有し,従来の合金における限界を克服します.
科学分野:
- 材料科学
- 金属工学
- 機械工学
背景:
- マイクロクラッキングは合成材料の寿命を 制限します
- 骨のような生物学的複合材料は クラック耐性を有する階層構造を示しますが 高い伸長性ではありません
研究 の 目的:
- クラック耐久性と高均一な伸縮性を兼ね備えた材料を開発する.
- バイオニクスに触発された クラックバッファリングメカニズムを研究する
主な方法:
- ユーテクティック高エントロピー合金 (EHEA) の方向性固化.
- 魚骨の微細構造を分析した結果
- 伸縮と強度を含む機械的性質を評価するための牽引試験.
主要な成果:
- EHEAは階層的に組織されたヘーリングボーンマイクロ構造を示しています.
- この構造は バイオニクスに触発された階層的なクラックバッファリングを容易にする.
- 材料は超高の均一な引力伸長 (~50%) を保持した.
結論:
- 開発されたEHEAは,クラック耐久性と高い伸縮性をうまく調和させています.
- ヘーリングボーン構造の階層的なクラークバッファリングは 破滅的なクラークの拡散を防ぐ.
- この自己バッファリング素材は,従来の非バッファリング EHEA よりも大幅に進歩しています.
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