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天然多孔介质中的电场驱动流。

Electric field driven flow in natural porous media.

作者信息

Bendel Peter, Bernardo Marcelino, Dunsmuir John H, Thomann Hans

机构信息

Chemical Services Section, MR Center, The Weizmann Institute of Science, Rehovot 76100, Israel.

出版信息

Magn Reson Imaging. 2003 Apr-May;21(3-4):321-7. doi: 10.1016/s0730-725x(03)00162-0.

Abstract

Electric fields were applied to fluid-saturated packed sand beds (0.23+/-0.03 mm average pore diameter), and the effects on the mobility of the water molecules were monitored using stimulated echo (STE) and pulsed field gradient (PFG) experiments. The mean flow velocity, averaged over the entire sample, is expected to vanish in closed systems, but the PFG and time dependent signal decay was enhanced beyond the effects of thermal diffusion, due to velocity dispersion. The internal flow generated by the electric field was shown to be fully time-reversible upon inverting the electric field polarity (for total flow times of up to 0.4s), a strong indication that the NMR detected displacements were mainly due to electro-osmotic flow (EOF). However, a comparison of the velocity dispersion for different electrolyte concentrations showed that the measured effect scaled with the applied power VI (V = voltage, I = electric current), rather than with the voltage alone, contrary to the prediction of the basic model for EOF in a single capillary channel.

摘要

将电场施加于流体饱和的填充砂床(平均孔径为0.23±0.03毫米),并使用受激回波(STE)和脉冲场梯度(PFG)实验监测对水分子迁移率的影响。在封闭系统中,整个样品的平均流速预计为零,但由于速度色散,PFG和随时间变化的信号衰减增强,超出了热扩散的影响。当反转电场极性时(总流动时间长达0.4秒),电场产生的内部流动显示出完全的时间可逆性,这有力地表明NMR检测到的位移主要是由于电渗流(EOF)。然而,对不同电解质浓度下速度色散的比较表明,测量到的效应与施加的功率VI(V =电压,I =电流)成比例,而不是仅与电压成比例,这与单毛细管通道中EOF基本模型的预测相反。

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