プレート・シェル理論に基づく角荷重下の多重波形ダイヤフラムの応力および剛性解析
Angang Cao1, Huiting Jin2, Wei Li2
1School of Mechanical Engineering, Zhengzhou University of Science and Technology, Zhengzhou, 450064, China. caoangang88@163.com.
Scientific reports
|December 30, 2025
まとめ
新しい解析モデルは、角荷重下での多重波形ダイヤフラム(MCD)カップリングの性能を正確に予測します。この効率的なモデルは、これらのフレキシブルカップリングの迅速な設計と最適化を支援します。
科学分野:
- 機械工学
- 材料科学
背景:
- 多重波形ダイヤフラム(MCD)カップリングは、角荷重下で複雑な非軸対称の挙動を示します。
- その正弦波構造は、機械的特性を予測するための従来の解析方法に課題をもたらします。
研究 の 目的:
- 角荷重下でのMCDカップリングの応力分布と角剛性を予測するための効率的な解析モデルを開発すること。
- MCDカップリング設計の最適化のための理論的根拠を提供すること。
主な方法:
- 有限要素解析(ANSYS)と組み合わせた解析手法。
- 区分化された波形と確立された境界条件。
- たわみ、応力、剛性のための解析式を導出しました。
主要な成果:
- 解析モデルの結果は、有限要素シミュレーションと高い一貫性を示しました。
- たわみ曲線と応力分布パターンは密接に一致しました。
- 角剛性の計算誤差は7%以内でした。
結論:
- 確立された解析モデルは、MCDカップリングのコアとなる機械的挙動を効果的に捉えています。
- このモデルは、高性能MCDカップリングの迅速な設計と最適化のための信頼できる理論的基盤を提供します。
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