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A Novel Approach to Subsea Multiphase Solid Transport

机译:海底多相固体运输的新方法

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Transportation of multiphase reservoir fluid through subsea tiebacks has gained considerable attention in recent years especially in the deep offshore and ultra deep offshore environments where there is increasing pressure on the operators to reduce development costs without compromising oil production. However, the main challenge associated with this means of transporting unprocessed reservoir fluids is the need to guarantee flow assurance and optimise production. Solids entrained in the fluid may drop off and settle at the bottom of horizontal pipe thereby reducing the space available to flow and causing erosion and corrosion of the pipeline. The problem has been largely attributed to insufficient flow velocity among other parameters required to keep the solids in suspension and prevent them from depositing in the pipe. The continuous changing flow patterns have introduced additional complexities dependent on gas and liquid flow rates. Acquisition of experimental data for model development and validation in multiphase flow has been largely focused on single and two phase flow. This has impeded our understanding of the behaviour and associated problems of three phase or four phase (oil, water, gas and solid) in pipes. The result is inappropriate solid transport models for three phase and four phase. In order to bridge this gap, the Well Engineering Research group at Robert Gordon University has initiated a project on integrated multiphase flow management system underpinned by comprehensive experimental investigation of multiphase solids transport. The project is aimed at developing precise/accurate sand transport models and an appropriate design and process optimisation simulator for subsea tiebacks. In this paper, the physics of the multiphase transport models being developed is presented. The models will allow for the prediction of key design and operational parameters such as flow patterns, phase velocity, pressure gradient, critical transport velocity, drag & lift forces, flow rate requirements and tiebacks sizing for transient multiphase flow. A new multiphase flow loop is being developed which will be used to generate experimental database for building and validating the theoretical models for use in a proposed integrated simulator for deepwater applications.
机译:近年来,通过海底运输通过海底的运输量尤其是在深海和超深层近海环境中,在运营商增加压力的情况下,在不损害石油生产的情况下降低开发成本的越来越多的近海环境。然而,与这种运输未加工的储层流体的方法相关的主要挑战是需要保证流量保证和优化生产。夹带在流体中的固体可以掉落并在水平管的底部沉淀,从而减少可用于流动的空间并引起管道的腐蚀和腐蚀。该问题在很大程度上归因于在悬浮液中保持固体所需的其他参数等的流速不足,并防止它们在管道中沉积。连续变化的流动模式引入了依赖于气体和液体流速的额外复杂性。获取多相流模型开发和验证的实验数据已经大大专注于单相和两相流。这使得我们对管道中的三相或四个阶段(油,水,天然气和固体)的行为和相关问题的理解。结果是三相和四个阶段的不恰当固体运输模型。为了弥补这一差距,罗伯特戈登大学的井工程研究小组已启动了一项关于综合多相流动管理体系的项目,通过综合实验研究了多相固体运输。该项目旨在开发精确/准确的沙运输模型以及适当的设计和工艺优化模拟器,用于海底连接。在本文中,提出了正在开发的多相传输模型的物理学。该模型将允许预测键设计和操作参数,例如流动模式,相速度,压梯度,临界传输速度,拖曳力,流量要求和用于瞬态多相流量的尺寸。正在开发一种新的多相流循环,该环将用于生成建筑物的实验数据库和验证在建议的深水应用中的综合模拟器中使用的理论模型。

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