论文标题

由微流体平台中的粘弹性微型运动引起的混合增强

Mixing enhancement induced by viscoelastic micromotors in microfluidic platform

论文作者

Zizzari, Alessandra, Cesaria, Maura, Bianco, Monica, del Mercato, Loretta L., Carraro, Mauro, Bonchio, Marcella, Rella, Roberto, Arima, Valentina

论文摘要

微观尺度上流体流的精细操纵对微流体平台内化学和生物过程的质量转运现象产生了巨大影响。由于固有缓慢的扩散机制,低雷诺的层流状态中的流体混合效果不佳。为了增强混合和迅速传输的策略,在这里,我们关注的是多电解质多层胶囊(PMC),体现了催化多氧甲酸盐作为微型对象,以创建弹性湍流,并作为微动物作为微动物,以通过燃料填充的推进来产生混沌流。通过微流体设置(包括压力和流动传感器)研究了弹性涡轮和人工推进对某些基本流动参数的影响。提出并讨论了实验数据的数值处理和物理模型,以解释在PMC存在下压降对流速的测得的依赖性。作为研究的实际结果,证明了蛇形微反应器中混合时间的强烈减少。与我们以前有关毛细血管流量研究的报告不同,本文依赖于流体动力泵送实验,这使我们既可以开发一个理论模型来理解所涉及现象,并证明了成功的微流体混合应用。所有这些都与开发基于微观对象的方法的角度相关,以克服显微镜过程,纯粹由微流体平台中质量trasport的潜在改进来控制。

Fine manipulation of fluid flows at the microscale has a tremendous impact on mass transport phenomena of chemical and biological processes inside microfluidic platforms. Fluid mixing in the laminar flow regime at low Reynolds is poorly effective due to the inherently slow diffusive mechanism. As a strategy to enhance mixing and prompt mass transport, here, we focus on polyelectrolyte multilayer capsules (PMCs) embodying a catalytic polyoxometalate as microobjects to create elastic turbulence and as micromotors to generate chaotic flows by fuel-fed propulsions. The effects of the elastic turbolence and of the artificial propulsion on some basic flow parameters, such as pressure and volumetric flow rate are studied by a microfluidic set-up including pressure and flow sensors. Numerical-handling and physical models of the experimental data are presented and discussed to explain the measured dependence of the pressure drop on the flow rate in presence of the PMCs. As a practical outcome of the study, a strong decrease of the mixing time in a serpentine microreactor is demonstrated. Unlike our previous reports dealing with capillarity flow studies, the present paper relies on hydrodynamic pumping experiments, that allows us to both develop a theoretical model for the understanding of the involved phenomena and demonstrate a successfully microfluidic mixing application. All of this is relevant in the perspective of developing microobject based methods to overcome microscale processes purely dominated by diffusion with potential improvements of mass trasport in microfluidic platforms.

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