在超疏水微通道中对粘性塑料流的两相模拟:接口稳定性,插头动力学和阻力降低
Amir Joulaei1, Hossein Rahmani2, Seyed Mohammad Taghavi1
1Department of Chemical Engineering, Universite Laval, Quebec, QC, G1V 0A6, Canada. Seyed-Mohammad.Taghavi@gch.ulaval.ca.
Lab on a chip
|February 13, 2026
概括
超疏水表面可以改善复杂的生物流体的微流体运输. 这项研究优化了槽设计,以便在微通道中有效地流动像血液这样的粘性塑料液体.
科学领域:
- 流体动力学 流体动力学
- 表面科学是一门科学.
- 生物微流体学 生物微流体学
背景情况:
- 超疏水表面在微流体中用于减少阻力.
- 它们与粘性塑性生物液体 (血液,粘液,水凝) 的行为尚不清楚.
研究的目的:
- 研究压力驱动的粘性塑料流在超性槽微通道中.
- 分析液体/空气接口的固定,中央未屈服的插头断裂和压力下降的减少.
- 开发用于优化微通道设计的预测模型.
主要方法:
- 高分辨率的两相模拟. 高分辨率的两相模拟.
- 对槽几何和流动惯性 (雷诺德数) 的分析.
- 对接口过渡,插头断裂和压力下降的相关性推导.
主要成果:
- 槽几何和雷诺兹数决定了接口的卡西状态 (钉定) 或取决于.
- 较薄的微通道显示出较低的临界雷诺兹数来进行脱.
- 槽尺寸显著影响插头变形和断裂.
- 开发了预测相关性和设计地图.
结论:
- 超疏水槽微通道可以优化用于粘性塑料流体的运输.
- 设计地图有助于开发高效的芯片实验室设备.
- 了解接口动态和插头行为对于微流体应用至关重要.
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