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Increasing production by applying simple/robust, field proven slug control technology

机译:通过应用简单/坚固,经过现场验证的块塞控制技术来提高产量

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Large fluctuations in gas and/or liquid production can lead to major disruptions on the topside facilities. Level control of separators becomes difficult with the risk of liquid carry-over into the gas train. Furthermore, the pressure surges accompanying the liquid surges hamper the gas compression facilities. These fluctuations are caused by the fluid composition, geometrical layout and operating conditions of the production system. Especially with flowline/riser systems, the riser may have a large impact on the amplitude of the production fluctuations. With the current trends of producing from marginal gas/condensate and oil fields to existing facilities with subsea tie-backs, the development of more deepwater fields and producing from existing production facilities towards the end of field life cycle issues with irregular production or slugging pipeline systems are observed more frequently. The most recent technology in Shell for slug control is the Smart Choke. This technology consists of a single control valve that is installed between the riser top and the first stage separator. It is an active slug control device, and, therefore, continuous acting on changes in the flow of gas and liquid by manipulating the opening of the control valve. Smart Chokes have been installed in the Gulf of Mexico (GoM) and in Malaysia. The flowlines were experiencing large fluctuations in liquid and gas production and pressure fluctuations at the inlet of the flowline and at the outlet of the riser, which were caused by a hydraulically unstable flowline/riser system. Case histories of deployments in the GoM - as well as recent assessments for Shell UK, Malaysia and Nigeria - indicate (potential) production gains of about 5 -10%. Also, the technology is used to extend field life. In end of field life, the pipeline is often over dimensioned because of the lower gas rates and increased water production. These conditions may lead to surges, which are too large to be handled by production facilities and may lead to an early abandonment of the pipeline with the connected well(s).
机译:气体和/或液体产量的大幅波动可能导致顶部设施的重大破坏。分离器的液位控制变得困难,因为有液体被带入气体管路的风险。此外,伴随液体浪涌的压力浪涌妨碍了气体压缩设备。这些波动是由生产系统的流体成分,几何布局和操作条件引起的。特别是对于流水线/立管系统,立管可能会对生产波动的幅度产生很大影响。从当前的趋势来看,从边缘气田/凝析油和油田到具有海底绑扎的现有设施的生产,更多的深水油田的开发以及从现有生产设施到油田生命周期末期生产的问题,包括不规则的生产或管道系统不畅通被更频繁地观察到。壳牌公司用于塞子控制的最新技术是智能扼流圈。该技术由安装在立管顶部和第一级分离器之间的单个控制阀组成。它是一种主动塞控制装置,因此,通过操纵控制阀的开度,可连续地作用于气体和液体流量的变化。智能扼流圈已安装在墨西哥湾(GoM)和马来西亚。由于液压不稳定的流水线/立管系统,流水线的液体和气体产量波动较大,并且流水线入口和立管出口的压力波动较大。 GoM中部署的案例历史以及对壳牌英国,马来西亚和尼日利亚的最新评估表明,(潜在的)生产收益约为5 -10%。而且,该技术还可以延长现场寿命。在现场生命周期的尽头,由于较低的燃气费率和增加的水产量,管道通常尺寸过大。这些情况可能导致喘振,喘振太大,无法由生产设施处理,并且可能导致尽早放弃与相连井相连的管道。

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