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首页> 外文期刊>Journal of Micromechanics and Microengineering >Electrokinetic microchannel battery by means of electrokinetic and microfluidic phenomena
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Electrokinetic microchannel battery by means of electrokinetic and microfluidic phenomena

机译:通过电动和微流体现象的电动微通道电池

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Pressure-driven flow in a microchannel induces a streaming current due to the presence of an electrical double layer in the interface between the electrolyte solution and channel wall. As the streaming current is of the order of a nano-amphere and is additive, we propose here a method to develop an electrokinetic battery consisting of an array of microchannels that converts the hydrostatic pressure of a liquid into electrical work. We have given oscillating analytical solutions by means of an electrical circuit analysis to model the multi-microchannel battery. Using superposition of the appropriate Fourier series, the derived analytical solutions are useful to predict the current when there is more general time-dependent flow through a microchannel array. To illustrate the idea, we have studied steady-state pressure-driven flow in micropore porous glass filter and compared the results with those predicted from our model. From a 30 cm hydrostatic pressure drop, an external current of 1-2 muA was obtained by means of water passing through the micropore porous glass filter. A larger current can be obtained by simply using a solution with higher salt concentration. This results in a new and potentially useful method of energy conversion by means of an array of microchannels. [References: 22]
机译:由于在电解质溶液和通道壁之间的界面中存在双电层,因此微通道中的压力驱动流会产生流动电流。由于流过的电流约为纳米安培,并且是相加的,因此我们在这里提出一种开发电动电池的方法,该电动电池由微通道阵列组成,该微通道将液体的静水压力转换为电能。我们已经通过电路分析给出了振荡分析解决方案,以对多微通道电池进行建模。使用适当的傅立叶级数的叠加,当存在更多一般时间相关的流过微通道阵列的电流时,导出的分析解决方案将很有用。为了说明这一点,我们研究了微孔多孔玻璃过滤器中的稳态压力驱动流,并将结果与​​模型预测的结果进行了比较。通过30cm的静水压降,通过水通过微孔多孔玻璃过滤器获得了1-2μA的外部电流。只需使用盐浓度较高的溶液即可获得更大的电流。这导致借助于微通道阵列的新的并且潜在有用的能量转换方法。 [参考:22]

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