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Vessel Internal Electrostatic Coalescer Technology (VIEC)

机译:船舶内部静电聚结技术(VIEC)

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In Dukhan oil production facilities, the well output is a mixture of oil, gas and water. Gas is released naturally as pressure decreases through the stages of the process. Separating oil and water is much more difficult, especially during low temperature due to the tight emulsion caused by fluid viscosity increase in spite of the demulsifier injection experienced mainly in winter time. Water droplets are dispersed forming water-oil emulsions which can be extremely stable due to surface tension and particles attaching themselves to the water-oil interface. Typically, a multi stage separation process is employed. The first stage separation vessel is one of the largest pieces of equipment on the plant. In many cases, it is time consuming to achieve the optimum oil-water separation output and requires an injection of a large amount of chemicals (demulsifier) to improve the separation efficiency. Applying the electro coalescence technique in the first stage of separation process increases the efficiency of the separation process. This technique has been developed and is now established. This has led to a modular device known as a Vessel Internal Electrostatic Coalescer (VIEC). The VIEC is expected to reduce such phenomena by increasing the residence time and reducing the troublesome emulsion layer in the first stage separator by due to its coalescing effect hence reduced the required injection of demulsifier. The application of electrostatic force to break oil-water emulsions and increase water droplet size is an old and proven technology. A coalescer forces small water droplets to merge and form larger and thus faster sedimenting drops. Therefore, the settling velocity of water droplets in oil not only depends on viscosity and density, but also on the droplet radius squared. If the average droplet size is doubled, separation time decreases by a factor of four. Increasing droplet size is exactly what an electrocoalescer does. This means that in many cases, such as in an existing separator, production can be increased by as much as 50%. This paper highlights first the theory of the VIEC technology. Then moves to discuss the consequences might be faced, the main features of VIEC technology. Finally shows the results of testing the new technology at different rates of chemical injection.
机译:在杜汉石油生产设施中,井输出是石油,天然气和水的混合物。压力通过过程的各个阶段减少气体自然散发。分离油和水是困难得多,特别是在低温下由于由尽管破乳剂注射的流体的粘度增加的紧乳剂主要经历在冬季时间。水滴被分散形成水 - 油乳液可以是非常稳定的,由于表面张力和依附到水 - 油界面的颗粒。通常情况下,采用多阶段分离过程。第一级分离容器是设备的对植物的最大部件之一。在许多情况下,这是耗时的,以实现最佳的油水分离输出,需要大量的化学品(破乳剂)的注射,以提高分离效率。在分离过程的第一阶段中施加的电聚结技术提高了分离过程的效率。这种技术已经开发,现在成立。这导致了被称为容器内部静电聚结器(VIEC)模块化设备。所述VIEC预期通过增加停留时间,并通过减少在第一级分离器的麻烦乳剂层,以减少这种现象由于其聚结效果,因此减少了破乳剂的要求喷射。静电力断油,水乳剂,增加水滴大小的应用程序是一个古老而又成熟的技术。聚结器的力小水滴合并而形成较大,因此更快沉降滴。因此,水滴在油中的沉降速度不仅依赖于粘度和密度,而且还取决于液滴半径的平方。如果平均微滴大小被加倍,分离时间通过四个因素减小。增加液滴尺寸是电聚做什么。这意味着,在许多情况下,如在现有的分离器,生产可以尽可能多增加50%。本文首先强调了VIEC技术的理论。然后移动到讨论的后果可能会面临,VIEC技术的主要特点。最后,显示了在化学注入不同速率测试新技术的结果。

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