Abate A R, Poitzsch A, Hwang Y, Lee J, Czerwinska J, Weitz D A
Department of Physics and SEAS, Harvard University, Cambridge, Massachusetts 02138, USA.
Phys Rev E Stat Nonlin Soft Matter Phys. 2009 Aug;80(2 Pt 2):026310. doi: 10.1103/PhysRevE.80.026310. Epub 2009 Aug 19.
We study the impact of inlet channel geometry on microfluidic drop formation. We show that drop makers with T-junction style inlets form monodisperse emulsions at low and moderate capillary numbers and those with Flow-Focus style inlets do so at moderate and high capillary numbers. At low and moderate capillary number, drop formation is dominated by interfacial forces and mediated by the confinement of the microchannels; drop size as a function of flow-rate ratio follows a simple functional form based on a blocking-squeezing mechanism. We summarize the stability of the drop makers with different inlet channel geometry in the form of a phase diagram as a function of capillary number and flow-rate ratio.
我们研究了入口通道几何形状对微流体液滴形成的影响。我们发现,具有T型结式入口的液滴发生器在低和中等毛细管数下形成单分散乳液,而具有流动聚焦式入口的液滴发生器在中等和高毛细管数下形成单分散乳液。在低和中等毛细管数下,液滴形成由界面力主导,并由微通道的限制介导;液滴尺寸作为流速比的函数遵循基于阻塞-挤压机制的简单函数形式。我们以相图的形式总结了具有不同入口通道几何形状的液滴发生器的稳定性,该相图是毛细管数和流速比的函数。