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Oil and gas pipelines with hydrophobic surfaces better equipped to deal with gas hydrate flow assurance issues

机译:具有疏水性表面的油气管道能够更好地处理天然气水合物的流量保证问题

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Gas hydrate deposition can cause plugging in oil and gas pipelines with resultant flow assurance challenges. Presently, the energy industry uses chemical additives in order to manage hydrate formation, however these chemicals are expensive and may be associated with safety and environmental concerns. Here we show the effect of a hydrophobically coated surface on hydrate formation in the presence of an antifreeze protein type I (AFP I) and a biodegradable synthetic polymer (LuvicapBio) in a high pressure crystallizer setup. The hydrophobic surface increased the hydrate induction time and reduced the hydrate growth significantly in pure deionized water (control). Furthermore, in the presence of 0.02 wt% of LuvicapBio or 0.014 wt% AFP I in the hydrophobic coated crystallizer; the hydrate growth was reduced to almost the same level as obtained with 0.20 wt% of LuvicapBio in a stainless steel crystallizer. This indicates that 10 to 14 times less KHI is needed in the presence of a hydrophobically coated surface. These experimental studies suggest that the use of hydrophobic surfaces or pipelines could serve as an alternative or additional flow assurance approach for gas hydration mitigation and management. (C) 2015 Elsevier B.V. All rights reserved.
机译:天然气水合物的沉积会导致油气管道堵塞,从而带来流量保证方面的挑战。当前,能源工业使用化学添加剂来控制水合物的形成,但是这些化学药品价格昂贵并且可能与安全和环境问题相关。在这里,我们显示了在高压结晶器中,存在抗冻蛋白I型(AFP I)和可生物降解的合成聚合物(LuvicapBio)的情况下,疏水涂层表面对水合物形成的影响。在纯去离子水中(对照),疏水表面增加了水合物的诱导时间,并显着降低了水合物的生长。此外,在疏水涂覆的结晶器中存在0.02重量%的LuvicapBio或0.014重量%的AFP I时;水合物的生长降低到几乎与在不锈钢结晶器中使用0.20 wt%的LuvicapBio所获得的水平相同。这表明在疏水涂层表面的存在下,所需的KHI减少了10至14倍。这些实验研究表明,疏水表面或管道的使用可以作为气体水化减缓和管理的替代或附加的流量保证方法。 (C)2015 Elsevier B.V.保留所有权利。

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