粘弾性液体プールへの液滴衝突の界面ダイナミクス
Wenyuan Zhong1, Zhiwei Song1, Yongkang Qin1
1School of Energy Science and Engineering, Harbin Institute of Technology, Harbin 150001, China.
Langmuir : the ACS journal of surfaces and colloids
|December 30, 2025
まとめ
高分子溶液の弾性は液滴のダイナミクスに影響を与え、キャビティの形状とジェットの長さを変化させる。液滴のバウンスは高分子濃度に非単調に依存し、3Dプリンティングやカプセル化への洞察を提供する。
科学分野:
- 流体力学
- レオロジー
- 高分子科学
背景:
- 液滴衝突ダイナミクスは、インクジェット印刷やスプレーコーティングなどの産業用途において重要である。
- 液滴の特性はよく研究されているが、粘弾性液体プールが衝突に及ぼす影響はあまり理解されていない。
研究 の 目的:
- 粘弾性高分子水溶液への油滴の衝突ダイナミクスを調査すること。
- 液滴と液体の相互作用における液体プール弾性の役割を解明すること。
主な方法:
- 液滴衝突の実験的観察。
- 実験結果を検証するための直接数値シミュレーション(DNS)。
主要な成果:
- プールの弾性はキャビティの曲率を高め、キャビティの深さを減らし、前方ジェットを短くする。
- 液滴のバウンスしきい値(レイノルズ数)と高分子濃度の間には非単調な関係が観察された。
- この挙動は、高分子溶液の臨界オーバーラップ濃度に関連している。
結論:
- 粘弾性は液滴衝突の結果に大きく影響する。
- この結果は、複雑な流体における液滴と液体の相互作用の理解を深める。
- 結果は、3Dプリンティングや液滴カプセル化などの技術の進歩に役立つ可能性がある。
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