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Superconfinement tailors fluid flow at microscales

机译:超约束技术可在微尺度上调节流体流量

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摘要

Understanding fluid dynamics under extreme confinement, where device and intrinsic fluid length scales become comparable, is essential to successfully develop the coming generations of fluidic devices. Here we report measurements of advancing fluid fronts in such a regime, which we dub superconfinement. We find that the strong coupling between contact-line friction and geometric confinement gives rise to a new stability regime where the maximum speed for a stable moving front exhibits a distinctive response to changes in the bounding geometry. Unstable fronts develop into drop-emitting jets controlled by thermal fluctuations. Numerical simulations reveal that the dynamics in superconfined systems is dominated by interfacial forces. Henceforth, we present a theory that quantifies our experiments in terms of the relevant interfacial length scale, which in our system is the intrinsic contact-line slip length. Our findings show that length-scale overlap can be used as a new fluid-control mechanism in strongly confined systems.
机译:在设备和内在流体长度尺度变得可比的极端局限下,了解流体动力学对成功开发下一代流体设备至关重要。在这里,我们报告了在这种情况下对超前约束进行流体前沿测量的方法。我们发现,接触线摩擦力与几何约束之间的强耦合产生了一种新的稳定状态,其中稳定的移动前沿的最大速度表现出对边界几何形状变化的独特响应。不稳定的前沿发展成为受热波动控制的液滴喷射流。数值模拟表明,超约束系统的动力学受界面力支配。今后,我们提出一种根据相关界面长度尺度对实验进行量化的理论,在我们的系统中,该尺度是固有接触线滑移长度。我们的发现表明,长度尺度重叠可以用作强约束系统中的一种新的流体控制机制。

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