ストレスをシートするために自然に回転
1Lyles School of Civil and Construction Engineering, Purdue University, West Lafayette, IN, USA.
まとめ
マンティス・シュリンプは 独特の音声特性を持ち 合成メタマテリアルの振る舞いを反映しています この発見は 自然の音響操作を理解するための 新たな道を開きます
科学分野:
- バイオ物理学
- 材料科学
- 音響学
背景:
- メタマテリアルとは 自然界に存在しない性質を持つ 工学的に作られた構造物です
- 音声の振る舞いは,材料内の音波の制御に関連しています.
- マンティスエビは 複雑な生物学的構造と行動で知られています
研究 の 目的:
- マンティス・シュリンプの音質を 調べるために
- マンティス・シュリンプの音響の振る舞いを 人工的なメタマテリアルと比べるため
- これらの発見の潜在的バイオインスピレーションの応用を探求する.
主な方法:
- マンティスの外骨格の音響測定
- 音波の伝播を計算モデル化している.
- 既存のメタマテリアルデータとの比較分析
主要な成果:
- マンティス・シュリンプの外骨は 調節可能な音帯の隙間を示しています
- 音響の振る舞いは,特定のフォノニック・クリスタル・メタマテリアルとよく似ています.
- マンティスの自然音響操作能力の証拠です
結論:
- マンティス・シュリンプは人工的なメタマテリアルに類似した自然音声特性を持っています.
- これは音響操作戦略の 収束進化を示唆しています
- バイオミミクリーの可能性 音響装置の設計
関連する概念動画
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