高傾斜曲面のコンプライアントなボンネット研磨のための,硬さ最適化プレセシオンモーション制御
Optics express
|February 20, 2026
まとめ
この研究では,複雑な表面のボンネット研磨のための新しいプレセシオンモーション制御を導入しています. この方法は,高梯度光学部品の加工精度と適応性を高めます.
科学分野:
- 機械工学 機械工学とは
- 光学工学は,光学工学である.
- 製造技術 製造技術 製造技術
背景:
- 従来のボンネットの磨きは,軌道の制限と力学的反応が悪いため,高傾斜の表面に苦労します.
- 複雑な幾何学は,精密加工のための高度な運動制御を必要とします.
研究 の 目的:
- 高梯度表面のボンネットの磨きのために,新しいプレセーション運動制御方法を開発する.
- 複雑な光学表面の加工精度と適応性を向上させるため.
主な方法:
- 運動的関係を確立するために多体系理論を利用した.
- B軸の傾斜角度を最小限に抑えることで,剛性最適化ソリューションを開発しました.
- 軸速度制約のあるスピンドルベクトル均質化アルゴリズムを実装しました.
主要な成果:
- 作業可能な加工グラデントを20°から35°以上まで大幅に増加させました.
- 大口径の表面の高精度コンフォーム磨きを可能にしました.
- 91.5%の形状保存率を達成しました.
結論:
- 提案された硬度最適のプレセシオン運動制御方法は,高傾斜の表面に対するボンネットの研磨能力を高めます.
- この進歩は,複雑な光学コンポーネントの製造のためのエンジニアリングの適用性を改善します.
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