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首页> 外文期刊>Nanotechnology >Slip-enhanced electrokinetic energy conversion in nanofluidic channels
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Slip-enhanced electrokinetic energy conversion in nanofluidic channels

机译:纳米流体通道中的滑动增强型电动能量转换

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摘要

We investigate theoretically the influence of hydrodynamic slip at the surface of a nanofluidic channel on the efficiency with which electrokinetic phenomena can be used to convert hydrostatic energy to electrical power. Slip is introduced by applying the Navier boundary condition to the pressure-driven and the electro-osmotic components of the fluid velocity. A strong enhancement in the efficiency is predicted for increasing slip length due to the resulting decrease in the fluidic impedance and increase in the streaming conductance. These effects are moderated by a decrease in the electrical impedance, which promotes dissipation. The maximum efficiency approaches 100% as the slip length diverges, and a potentially practical 40% efficiency is expected for a moderate 30 nm slip length in a 10 nm high channel. Recently reported slip lengths for carbon nanotube filters suggest that efficiencies above 70% and high power densities might be achieved in a graphitic system.
机译:我们从理论上研究了纳米流体通道表面的流体动力学滑移对电动现象可用于将静液压能转换为电能的效率的影响。通过将Navier边界条件应用于流体速度的压力驱动分量和电渗透分量来引入滑动。由于流体阻抗的减少和流导的增加,预计滑动长度增加会大大提高效率。这些影响可通过电阻抗的降低来缓和,这会促进耗散。随着滑移长度的不同,最大效率接近100%,在10 nm高的通道中,对于适度的30 nm滑移长度,有望实现40%的效率。最近报道的碳纳米管过滤器的滑移长度表明,在石墨系统中可以实现70%以上的效率和高功率密度。

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