首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Energy Transfer through Streaming Effects in Time-Periodic Pressure-Driven Nanochannel Flows with Interfacial Slip
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Energy Transfer through Streaming Effects in Time-Periodic Pressure-Driven Nanochannel Flows with Interfacial Slip

机译:通过具有界面滑移的时间周期压力驱动纳米通道流中的流效应进行能量转移

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摘要

We analytically investigate the prospect of using electrokinetic phenomena to transfer hydrostatic energy to electrical power with high energy transfer efficiencies, by exploiting time periodic pressure-driven flows in narrow fluidic confinements. An expression for the energy transfer efficiency for such pulsating pressure-driven flows is derived by considering wall-slip effects due to hydrophobic interactions, strong electrical double layer interactions in the confined flow passages, possibilities of exploring the regimes of large wall potentials, and the adverse consequences of the finite conductance of the Stern layer. It is revealed from our studies that high-frequency pressure pulsations may be employed in practice to improve the concerned energy transfer efficiency to a considerable extent, instead of using a steady-state pressure field. Such favorable effects are found to be best exploited by utilizing “slipping” electro-hydrodynamics in thick electrical double layers in the presence of high surface potentials.
机译:我们通过在狭窄的流体限制条件下利用时间周期压力驱动的流动,来分析利用电动现象将静液压能转换为具有高能量转移效率的电力的前景。通过考虑由于疏水相互作用,密闭流道中的强电双层相互作用,探索大壁电势的可能性以及壁流引起的壁滑效应,得出了这种脉动压力驱动流的能量转移效率的表达式。斯特恩层的有限电导的不利影响。从我们的研究中可以发现,在实践中可以使用高频压力脉动在相当大的程度上提高相关的能量传输效率,而不是使用稳态压力场。发现在高表面电势存在的情况下,通过在厚双电层中利用“滑移”电液动力学可以最好地利用这种有利效果。

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