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Drop-drop coalescence in an electric field: the effects of applied electric field and electrode geometry

机译:电场中的液滴结合:施加电场和电极几何形状的影响

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Separation methods utilising high electric fields have been used extensively in the oil and petroleum industries, where the occurrence of water-in-oil dispersions is highly unwelcome due to physical constraints, as well as high maintenance costs required to treat these dispersions. Most of the conventional electro-separators are huge and bulky, thus having high capital and operating costs. There is, therefore, a great scope to optimise the design and operation of these separators based on a fundamental understanding of the role of high electric field in the coalescence of aqueous drops in oil. This paper reports the studies of the effects of the direction of the applied electric field as well as the geometry of the electrodes. The angle between the electric field and the centre line of two drops, theta, should be zero for the electrically induced force to attain its maximum attractive value. The maximum induced force is large enough to deform the adjacent surfaces of the drops prior to drop-drop coalescence. It has been shown experimentally and theoretically that drop-drop attraction can also occur when theta is less than 54.7degrees or more than 125.3degrees. Several two-dimensional electrode designs have been shown to conform to this theory. When a pulsed electric field is applied to a drop, the drop vibrates with a frequency following the applied pulse frequency until a limit, beyond which the observed frequency of drop vibration will not follow the applied pulse frequency linearly. The limit depends on the continuous liquid phase. Above this limit, the drop has also a very small magnitude of vibration. This is believed to have an influence on the optimum pulse frequency for liquid-liquid separation in a particular physical system. The premature drop-drop coalescence in an electric field is believed to be influenced by the natural mechanical vibration and cavitation within the drops. Therefore, the magnitude of the applied electric field and the pulsing frequency can be optimised to suit the physical liquid-liquid system, and, therefore, giving a better design of the electrocoalescer. (C) 2003 Elsevier Science B.V. All rights reserved. [References: 28]
机译:利用高电场的分离方法已经在石油和石油工业中被广泛使用,由于物理限制以及处理这些分散体所需的高维护成本,在油中水分散体的出现非常不受欢迎。大多数传统的电分离器是巨大且笨重的,因此具有高的资本和运营成本。因此,基于对高电场在油中水滴凝聚中的作用的基本理解,有很大的空间来优化这些分离器的设计和操作。本文报道了对施加电场方向以及电极几何形状的影响的研究。电场与两个液滴的中心线θ之间的角度应为零,以使电感应力达到其最大吸引力。最大感应力大到足以在墨滴-墨滴聚结之前使墨滴的相邻表面变形。从实验和理论上已经表明,当θ小于54.7度或大于125.3度时,也会发生液滴吸引。已经显示出几种二维电极设计符合该理论。当对滴施加脉冲电场时,滴以跟随所施加的脉冲频率的频率振动,直到达到极限,超过该极限,观察到的滴振动的频率将不会线性地跟随所施加的脉冲频率。该极限取决于连续液相。超过此极限,液滴的振动幅度也很小。据信这对特定物理系统中用于液-液分离的最佳脉冲频率有影响。电场中过早的液滴-液滴结合被认为受液滴内的自然机械振动和空化影响。因此,可以优化所施加的电场的大小和脉冲频率以适合物理液-液系统,因此,可以提供一种更好的电按摩器设计。 (C)2003 Elsevier Science B.V.保留所有权利。 [参考:28]

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