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首页> 外文期刊>Journal of loss prevention in the process industries >Research on flow assurance of deepwater submarine natural gas pipelines: Hydrate prediction and prevention
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Research on flow assurance of deepwater submarine natural gas pipelines: Hydrate prediction and prevention

机译:深水潜艇天然气管道流量保证研究:水合物预测预测

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The formation of hydrate will lead to serious flow assurance problems in deepwater submarine natural gas transmission pipelines. However, the accurate evaluation model of the hydrate blocking risk for submarine natural gas transportation is still lacking. In this work, a novel model is established for evaluating the hydrate risk in deepwater submarine gas pipelines. Based on hydrate growth-deposition mechanism, the mathematical model mainly consists of mass, momentum and energy conservation equations. Meantime, the model results are obtained by finite difference method and iterative technique. Finally, the model has been applied in the production of deepwater gas field (L Gas Field) in China, and the sensitivity analysis of relevant parameters has been carried out. The results show that: (a). The mathematical model can well predict the hydrate blockage risk in deepwater natural gas pipelines after verification. (b). Hydrate is easily formed at the intersection of horizontal pipeline and vertical riser, and the maximum blocking position often occurs in middle of the riser. (c). The hydrate blockage degree and length of hydrate formation region (HFR) decrease with the increase of gas transport rate. (d). The hydrate blockage degree and length of HFR decrease with the increase of gas transport temperature. (e). The hydrate blockage degree and length of HFR increase with the extension of horizontal pipeline. (f). Injecting inhibitors can effectively inhibit hydrate formation and blockage, but the improvement of transmission measures can significantly reduce the dosage of inhibitor. It is concluded that measures such as increasing gas transportation rate and temperature, shortening horizontal pipeline length, optimizing inhibitor injection point and injection rate can play a safe, economic and efficient role in hydrate preventing and controlling.
机译:水合物的形成将导致深水潜艇天然气传输管道中的严重流动保证问题。然而,潜艇天然气运输的水合物阻断风险的准确评估模型仍然缺乏。在这项工作中,建立了一种新型模型,用于评估深水潜艇燃气管道中的水合物风险。基于水合物生长沉积机制,数学模型主要由质量,动量和节能方程组成。同时,通过有限差分方法和迭代技术获得模型结果。最后,该模型已应用于中国深水天然气场(L天然气场)的生产,并进行了相关参数的敏感性分析。结果表明:(a)。数学模型可以在验证后预测深水天然气管道中的水合物堵塞风险。 (b)。水合物在水平管道和垂直提升管的交叉处容易形成,并且最大阻挡位置经常发生在提升管的中间。 (C)。随着气体运输速率的增加,水合物形成区(HFR)水合物堵塞度和长度降低。 (d)。随着气体运输温度的增加,HFR的水合物堵塞程度和长度降低。 (e)。随着水平管道的延伸,水合物堵塞程度和HFR的长度增加。 (F)。注射抑制剂可以有效地抑制水合物形成和堵塞,但透射措施的提高可以显着降低抑制剂的剂量。结论是,诸如越来越多的气体运输速率和温度,横向管道长度,优化抑制剂注射点和注射率的措施可以在水合物预防和控制方面发挥安全,经济和有效的作用。

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