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Streaming potential measurements 1. Properties of the electrical double layer from crushed rock samples

机译:流电势测量1.碎石样品的双电层特性

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The #zeta# potential has been inferred from streaming potential measurements with crushed rock samples as a function of pH and electrolyte concentration for various salts. The value obtained for crushed Fontainebleau sandstone at pH = 5.7 and a KCl solution with a resistivity of 400 #OMEGA# m is -40 +- 5 mV, where the error is dominated by sample to sample variations. The sensitivity of the #zeta# potential to the electrolyte resistivity for KCl is given experimentally by #rho#_f~(0.23 +- 0.014), where #rho#f is the electrolyte resistivity. The point of zero charge (pzc) is observed for pH = 2.5 +- 0.1, and the #zeta# potential is positive for pH < pzc and negative for pH > pzc. For pH > 5 the variations of the #zeta# potential with pH can be approximated by #zeta#(pH)/#zeta#(5.7) = 1 + (0.068 +- 0.004)(pH - 5.7) for #rho#f = 100 #OMEGA# m. The #zeta# potential has been observed to be sensitive to the valence of the ions and is approximately reduced by the charge of the cation, unless specific adsorption takes place like in the case of Al~(3+). The experimental results are well accounted for by a three-layer numerical model of the electrical double layer, and the parameters of this model can be evaluated from the experimental data. The sensitivity of the #zeta# potential to the rock minerals has also been studied. The #zeta# potential obtained for granitic rocks is comparable to that obtained for Fontainebleau sandstone but can be reduced by a factor of 2-4 for sandstones containing significant fractions of carbonates or clay. To take into account the effect of the chemical composition of the electrolyte, a chemical efficiency is defined as the ration of the #zeta# potential to the #zeta# potential measured for KCl. This chemical efficiency is measured to be approx 80% for typical groundwater but can be as low as 40% for a water with a high dissolved carbonate content. The set of empirical laws derived from our measurements can be used to assess the magnitude of the streaming potentials expected in natural geophysical systems.
机译:从压碎岩石样品的流电势测量值可以推断出#zeta#电势是各种盐的pH和电解质浓度的函数。在pH = 5.7的枫丹白露压碎砂岩和电阻率为400#OMEGA#m的KCl溶液中获得的值为-40±-5 mV,其中误差主要取决于样品之间的差异。实验上通过#rho#_f〜(0.23 +-0.014)给出了#zeta#电势对KCl的电解质电阻率的灵敏度,其中#rho#f是电解质电阻率。对于pH = 2.5±0.1,观察到零电荷点(pzc),并且对于pH zc,#zeta#电势为正,对于pH> pzc,#zeta#电势为负。对于pH> 5,#zeta#电势随pH的变化可以通过#zeta#(pH)/#zeta#(5.7)= 1 +(0.068 +-0.004)(pH-5.7)(pH-5.7)来近似= 100#OMEGA#m。观察到#zeta#电势对离子的价态敏感,并且除非阳离子吸附如Al〜(3+)那样发生,否则它会因阳离子的电荷而大致降低。三层电双层数值模型很好地说明了实验结果,并且可以从实验数据中评估该模型的参数。还研究了#zeta#电位对岩石矿物的敏感性。花岗岩岩石获得的#zeta#电位与枫丹白露砂岩获得的#zeta#电位相当,但对于包含大量碳酸盐或粘土的砂岩,则可以降低2-4倍。考虑到电解质的化学组成的影响,将化学效率定义为对于KCl测得的#zeta#电势与#zeta#电势之比。对于典型的地下水,该化学效率测得约为80%,但对于溶解碳酸盐含量较高的水,其化学效率可低至40%。从我们的测量中得出的一组经验定律可用于评估自然地球物理系统中预期的流电势的大小。

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