Bryce R M, Freeman M R
Department of Physics, University of Alberta, Edmonton, Canada.
Phys Rev E Stat Nonlin Soft Matter Phys. 2010 Mar;81(3 Pt 2):036328. doi: 10.1103/PhysRevE.81.036328. Epub 2010 Mar 31.
Fluid transport in microfluidic systems typically is laminar due to the low Reynolds number characteristic of the flow. The inclusion of suspended polymers imparts elasticity to fluids, allowing instabilities to be excited when substantial polymer stretching occurs. For high molecular weight polymer chains we find that flow velocities achievable by standard electro-osmotic pumping are sufficient to excite extensional instabilities in dilute polymer solutions. We observe a dependence in measured fluctuations on polymer concentration which plateaus at a threshold corresponding to the onset of significant molecular crowding in macromolecular solutions; plateauing occurs well below the overlap concentration. Our results show that electro-osmotic flows of complex fluids are disturbed from the steady regime, suggesting potential for enhanced mixing and requiring care in modeling the flow of complex liquids such as biopolymer suspensions.
由于微流体系统中流动的雷诺数较低,流体传输通常为层流。悬浮聚合物的加入赋予流体弹性,当聚合物发生显著拉伸时会激发不稳定性。对于高分子量聚合物链,我们发现标准电渗泵可实现的流速足以激发稀聚合物溶液中的拉伸不稳定性。我们观察到测量的涨落在聚合物浓度上存在依赖性,该依赖性在与大分子溶液中显著分子拥挤开始相对应的阈值处趋于平稳;平稳发生在远低于重叠浓度的情况下。我们的结果表明,复杂流体的电渗流会偏离稳定状态,这表明存在增强混合的潜力,并且在对生物聚合物悬浮液等复杂液体的流动进行建模时需要谨慎。