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Pipelines Slugging and Mitigation: Case Study for Stability and Production Optimization

机译:管道镇静和缓解:稳定性和生产优化的案例研究

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The ConocoPhillips Alpine facility, on the Alaskan North Slope, has experienced slugging problems severe enough to trip the high-high inlet separator level, causing frequent plant shutdowns, and loss of production of 110 kbbl/d. A slugging study was commissioned to investigate the cause of the existing CD-2 pipeline slugging, and possible mitigation procedures, which could alleviate and/or eliminate slugging. Further, the Alpine expansion called for an additional two pipelines (CD-3 and CD-4) to be brought into Alpine inlet separator. Slugging mechanism and instability analysis were performed. The instability is due to combination of its low flow rate, overly-sized pipeline ID and unfavorable pipeline profile. Flow pattern transition exists at the low spots and liquid accumulates and blocks the flow. In the low pressure system, once gas blows out and system pressure drops, the pipeline inlet gas increases velocity and picks up a new hydrodynamic slug. This slug moves through the road crossing and the pipe rack riser, becoming a long slug which arrives at the separator. In this study, a slug-tracking model with separator gas/liquid PID controllers was built to reproduce the field SCADA data. A remarkably good match of pressure variations, slugging frequency and liquid level was achieved. A sensitivity study was performed to investigate the effective and practical ways to suppress slugging in the existing CD-1 and CD-2 pipeline. Finally, a combined control was recommended by installing a by-pass control valve at the butterfly valve location. The by-pass inlet control valve before the separator acquires separator liquid level signal, and actuates when the separator liquid level exceeds the set value.This significantly reduces slugging effect on separator performance. The slugging model and results based on the existing CD-2 pipeline were applied to the future expanded CD-3 and CD-4 pipeline study. Some conclusions were drawn from the slugging behavior.
机译:康菲高山设施,在阿拉斯加北坡,经历猛击问题足够严重跳闸高 - 高入口分离器的水平,从而导致频繁的工厂停工,生产110 kbbl / d的损失。腾涌的研究被委托调查的现有CD-2管道段塞流的原因,并可能减缓程序,这可能会减轻和/或消除猛击。此外,被带入高山入口分离器高山膨胀称为额外两条管线(CD-3和CD-4)。进行猛击机制和不稳定性分析。不稳定是由于其较低的流速的组合,过于尺寸管道ID和不利的管道轮廓。流型转换存在于低斑点和液体积聚,并阻止流动。在低压系统中,一旦气体吹出和系统压力下降,管道入口气体的增加速度和拾取新的液力蛞蝓。这蛞蝓通过公路道口和管架移动立管,成为一大口,其到达分离器。在这项研究中,与分离器的气/液PID控制器蛞蝓跟踪模型的建立是为了再现字段SCADA数据。一个非常好的压力变化,段塞流的频率和液面的匹配的实现。进行了敏感性研究探讨在现有的CD-1和CD-2管道的有效和实用的方法来压制猛击。最后,组合的控制建议通过在蝶形阀位置安装一个旁通控制阀。旁通入口控制阀的隔膜分离器获取液位信号之前,并且当分离器液体水平超过设定价值。显著减少预压上隔板性能影响致动。基于现有的CD-2管道的猛击模型和结果应用到未来扩展的CD-3和CD-4管线的研究。有些结论是从猛击行为绘制。

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