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A nanostructured surface increases friction exponentially at the solid-gas interface

机译:纳米结构表面在固体气体界面处呈指数增加摩擦

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摘要

According to Stokes' law, a moving solid surface experiences viscous drag that is linearly related to its velocity and the viscosity of the medium. The viscous interactions result in dissipation that is known to scale as the square root of the kinematic viscosity times the density of the gas. We observed that when an oscillating surface is modified with nanostructures, the experimentally measured dissipation shows an exponential dependence on kinematic viscosity. The surface nanostructures alter solid-gas interplay greatly, amplifying the dissipation response exponentially for even minute variations in viscosity. Nanostructured resonator thus allows discrimination of otherwise narrow range of gaseous viscosity making dissipation an ideal parameter for analysis of a gaseous media. We attribute the observed exponential enhancement to the stochastic nature of interactions of many coupled nanostructures with the gas media.
机译:根据Stokes的定律,移动的固体表面经历粘性阻力,与其速度和介质的速度线性相关。粘性相互作用导致耗散,其被称为作为气体密度的运动粘度倍的平方根。我们观察到,当用纳米结构修饰振荡表面时,实验测量的耗散显示了对运动粘度的指数依赖性。表面纳米结构大大改变固体气体相互作用,呈指数逐渐扩大耗散响应,以进行粘度的微小变化。因此,纳米结构谐振器允许辨别其他窄范围的气态粘度,使得耗散用于分析气态介质的理想参数。我们将观察到的指数增强归因于许多耦合纳米结构与气体介质的相互作用的随机性质。

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