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Hydroelectrical energy conversion in narrow confinements in the presence of transverse magnetic fields with electrokinetic effects

机译:在具有电动效应的横向磁场存在下,在狭窄的空间内进行水电能量转换

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In this work, we investigate the combined influences of externally applied axial pressure gradients and transverse magnetic fields on hydroelectrical energy conversion mechanisms in narrow fluidic confinements. This energy conversion is achieved through an exploitation of the electromagnetohydrodynamic effects as a result of electrical double layer formation and the consequent interfacial phenomena. Although no electrical field is externally applied, a reverse electrokinetic transport may be induced on account of the streaming potential field which is spontaneously developed due to the preferential migration of ionic charges with the fluid flow, as modulated by the pressure and the magnetic fields. We explore ranges of surface potentials beyond the traditional Debye–Hückel limits by employing nonlinear forms of the Poisson–Boltzmann equation for electrical potential distribution, yet adhering to a semianalytical formalism. Our studies quantitatively depict the explicit implications of the external magnetic field on the overall energy conversion efficiency through the pertinent nondimensional parameters. We also investigate the cases of low surface potentials and thin electrical double layers as special limits of the generalized considerations addressed in this work.
机译:在这项工作中,我们研究了外部施加的轴向压力梯度和横向磁场对窄流体限制中水电能量转换机制的综合影响。这种能量转换是通过利用双电层的形成以及由此产生的界面现象来利用电磁流体动力效应来实现的。尽管没有外部施加电场,但是由于离子流随离子流的优先迁移而自发形成的流动电势场,由于压力和磁场的调节,会自动产生逆向电动势的迁移。我们通过采用非线性形式的Poisson-Boltzmann方程进行电势分布,探索了传统Debye-Hückel极限以外的表面电势范围,但仍坚持半分析形式主义。我们的研究通过相关的无量纲参数定量地描述了外部磁场对整体能量转换效率的明确影响。我们还研究了低表面电势和双电层薄的情况,以此作为对此工作中解决的普遍考虑的特殊限制。

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