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首页> 外文期刊>Lab on a chip >Breakup dynamics and dripping-to-jetting transition in a Newtonian/shear-thinning multiphase microsystem
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Breakup dynamics and dripping-to-jetting transition in a Newtonian/shear-thinning multiphase microsystem

机译:牛顿/剪切稀化多相微系统的破裂动力学和滴注转变

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The breakup dynamics in non-Newtonian multiphase microsystems is associated with a variety of industrial applications such as food production and biomedical engineering. In this study, we numerically and experimentally characterize the dripping-to-jetting transition under various flow conditions in a Newtonian/shear-thinning multiphase microsystem. Our work can help to predict the formation of undesirable satellite droplets, which is one of the challenges in dispensing non-Newtonian fluids. We also demonstrate the variations in breakup dynamics between shear-thinning and Newtonian fluids under the same flow conditions. For shear-thinning fluids, the droplet size increases when the capillary number is smaller than a critical value, while it decreases when the capillary number is beyond the critical value. The variations highlight the importance of rheological effects in flows with a non-Newtonian fluid. The viscosity of shear-thinning fluids significantly affects the control over the droplet size, therefore necessitating the manipulation of the shear rate through adjusting the flow rate and the dimensions of the nozzle. Consequently, the droplet size can be tuned in a controlled manner. Our findings can guide the design of novel microdevices for generating droplets of shear-thinning fluids with a predetermined droplet size. This enhances the ability to fabricate functional particles using an emulsion-templated approach. Moreover, elastic effects are also investigated experimentally using a model shear-thinning fluid that also exhibits elastic behaviors: droplets are increasingly deformed with increasing elasticity of the continuous phase. The overall understanding in the model multiphase microsystem will facilitate the use of a droplet-based approach for non-Newtonian multiphase applications ranging from energy to biomedical sciences.
机译:非牛顿多相微系统中的分解动力学与多种工业应用相关,例如食品生产和生物医学工程。在这项研究中,我们在数值上和实验上表征了牛顿/剪切稀化多相微系统在各种流动条件下的滴水到喷水过渡。我们的工作可以帮助预测不良卫星滴的形成,这是分配非牛顿流体的挑战之一。我们还证明了在相同流动条件下,稀疏剪切流体和牛顿流体之间的破裂动力学变化。对于剪切稀化流体,当毛细管数小于临界值时,液滴尺寸会增加,而当毛细管数超过临界值时,液滴尺寸会减小。这些变化突出了在非牛顿流体流动中流变效应的重要性。稀疏剪切液的粘度显着影响液滴尺寸的控制,因此需要通过调节喷嘴的流量和尺寸来控制剪切速率。因此,可以以受控的方式调节液滴的大小。我们的发现可以指导新型微设备的设计,以产生具有预定液滴尺寸的剪切稀化流体液滴。这增强了使用乳液模板化方法制造功能性颗粒的能力。此外,还使用还表现出弹性行为的模型剪切稀化流体对弹性效应进行了实验研究:随着连续相弹性的增加,液滴逐渐变形。对模型多相微系统的总体了解将有助于基于液滴的方法在非牛顿多相应用中的应用,从能源到生物医学。

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