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Effect of pulsed electric field on electrodialysis of a NaCl solution in sub-limiting current regime

机译:极限电流条件下脉冲电场对NaCl溶液电渗析的影响

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In spite of growing applications of pulsed electric fields (PEF) in membrane separation processes, there are only few theoretical studies treating mass transfer. In this paper, we propose a 1D mathematical model, which adequately describes PEF mode electrodialysis (ED) with ion-exchange membranes at sub-limiting currents. The results of simulation are compared with experimental data obtained for a laboratory-scale electrodialysis stack. We show experimentally and theoretically that the average current density and mass transfer under PEF of a sufficiently high frequency (> 1 Hz in the used conditions) are higher than those in conventional steady state DE mode, if a same average voltage is applied. The advantage increases with frequency and reaches a maximum at about 100 Hz. When applying a pulse after a pause, we benefit by low ohmic resistance and low diffusion potential drop caused by partial concentration restoration in close vicinity of the membrane. This allows passage of an instantaneous current of a high density, which can essentially exceed the limiting current density (j(lim)) in steady state DC conditions. However, at low frequencies this gain rapidly vanishes by increasing concentration polarization during the pulse, thereby the mass transfer in PEF mode is lower than that in DE mode. The gain is close to zero at low currents due to linearity of I-V curve and increases with increasing current. However, within the model, the average current density cannot be higher than i(lim). The gain in mass transfer rate at high frequencies increases with decreasing duty cycle, but with this the energy consumption for electrodialysis desalination in PEF mode increases, it is always higher than the energy consumption in continuous DE mode. (C) 2015 Elsevier Ltd. All rights reserved.
机译:尽管脉冲电场(PEF)在膜分离过程中的应用不断增长,但只有很少的理论研究可以处理传质。在本文中,我们提出了一个一维数学模型,该模型充分描述了在极限电流下带有离子交换膜的PEF模式电渗析(ED)。将模拟结果与实验室规模的电渗析堆栈获得的实验数据进行比较。我们从实验和理论上表明,如果施加相同的平均电压,则在足够高的频率(在所用条件下> 1 Hz)下,PEF下的平均电流密度和质量传递比常规稳态DE模式下的平均电流密度和质量传递更高。优势随频率增加,并在约100 Hz时达到最大值。暂停后施加脉冲时,由于膜附近附近部分浓度恢复而导致的低欧姆电阻和低扩散电位降,我们会受益。这允许高密度的瞬时电流通过,该电流可以在稳态直流条件下基本超过极限电流密度(j(lim))。但是,在低频下,此增益通过在脉冲期间增加浓度极化而迅速消失,因此,PEF模式下的质量传递低于DE模式下的质量传递。由于I-V曲线的线性,增益在低电流时接近于零,并且随着电流的增加而增加。但是,在模型内,平均电流密度不能高于i(lim)。高频下的传质速率增益随着占空比的减小而增加,但是由此增加了PEF模式下电渗析脱盐的能耗,它始终高于连续DE模式下的能耗。 (C)2015 Elsevier Ltd.保留所有权利。

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