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MULTIPHASE TRANSIENT SLUGGING FLOW IN SUBSEA OIL AND GAS PRODUCTION

机译:海底石油和天然气生产中的多相瞬态撬扣流动

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Slug flow in horizontal pipelines and riser systems in deep sea has been proved as one of the challenging flow assurance issues. Large and fluctuating gas/liquid rates can severely reduce production and, in the worst case, shut down, depressurization or damage topside equipment, such as separator, vessels and compressors. Previous studies are primarily based on experimental investigations of fluid properties with air/water as working media in considerably scaled down model pipes, and the results cannot be simply extrapolated to full scale due to the significant difference in Reynolds number and other fluid conditions. In this paper, the focus is on utilizing practical shape of pipe, working conditions and fluid data for simulation and data analysis. The study aims to investigate the transient multiphase slug flow in subsea oil and gas production based on the field data, using numerical model developed by simulator OLGA and data analysis. As the first step, cases with field data have been modelled using OLGA and validated by comparing with the results obtained using PIPESYS in steady state analysis. Then, a numerical model to predict slugging flow characteristics under transient state in pipeline and riser system was set up using multiphase flow simulator OLGA. One of the highlights of the present study is the new transient model developed by OLGA with an added capacity of newly developed thermal model programmed with MATLAB in order to represent the large variable temperature distribution of the riser in deep water condition. The slug characteristics in pipelines and temperature distribution of riser are analyzed under the different temperature gradients along the water depth. Finally, the depressurization during a shut-down and then restart procedure considering hydrate formation checking is simulated. Furthermore, slug length, pressure drop and liquid hold up in the riser are predicted under the realistic field development scenarios.
机译:被证明是水平管道和水平管道和提升管系统的SLUP流量被证明是一个具有挑战性的流动保证问题之一。大型和波动的气体/液体速率可能会严重减少生产,并且在最坏的情况下,关闭,减压或损坏顶部设备,如隔板,船舶和压缩机。以前的研究主要基于在相当长的缩小模型管中作为工作介质的空气/水的流体性质的实验研究,并且由于雷诺数和其他流体条件的显着差异,结果不能简单地推断为满量程。在本文中,重点是利用实际形状的管道,工作条件和流体数据进行仿真和数据分析。该研究旨在使用模拟器OLGA和数据分析开发的数值模型来研究基于现场数据的瞬态多相SLUG流和基于现场数据。作为第一步,使用OLGA建模了具有现场数据的案例,并通过与使用稳态分析中的PIPESY获得的结果进行比较验证。然后,使用多相流动模拟器OLGA建立了一种数字模型,以预测管道和提升系统中的瞬态状态下的瞬态状态。本研究的亮点之一是OLGA开发的新瞬态模型,具有与MATLAB编程的新开发的热模型的额增加容量,以表示提升机在深水条件下的大型可变温度分布。沿着水深在不同的温度梯度下分析管道管道和温度分布的SLAT特性。最后,模拟了考虑水合物形成检查的关闭期间的减压,然后重新启动过程。此外,在现实的现场开发场景下预测了在提升板中的凹槽长度,压降和液体保持。

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