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A novel methodology for the design and optimisation of oil and gas offshore platforms

机译:油气海上平台设计和优化的新方法

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Oil and gas offshore platforms present similar structural designs and include operations such as separation, compression and pumping. However, they handle large variations in the production of hydrocarbons and water over time. They may also follow different modes of operation depending on the field characteristics and fluid properties. It is therefore not possible to suggest a standard layout of an offshore platform that can be widely implemented in distinct petroleum regions. The oil and gas processing plant should be designed adequately to maximise the hydrocarbon production and minimise the power, heating and cooling demands. The utility plant should be designed appropriately to minimise the fuel consumption and cover the energy needs in all production phases. The present paper presents a generic methodology that addresses these challenges and builds on a combination of process simulation, energy analysis and optimisation routines. Possible platform layouts are sized, evaluated and ranked, based on preliminary estimates of the production profiles and petroleum properties. This methodology is applied to three case studies, derived from actual field data from Norway and Brazil, with different field conditions, fluid compositions (e.g. negligible, medium and high CO2 contents of the well-fluids) and operational requirements (e.g. gas export, injection and lift). The results illustrate the benefits of the proposed methodology, as a comparison with the 'business-as-usual' case shows up to 25-30% energy savings and CO2-emissions along the field lifespan. (C) 2019 Elsevier Ltd. All rights reserved.
机译:石油和天然气海上平台具有相似的结构设计,并包括分离,压缩和抽油等操作。但是,随着时间的推移,它们处理烃类和水的生产变化很大。它们还可以遵循不同的操作模式,具体取决于现场特性和流体属性。因此,不可能提出可以在不同石油区域广泛实施的海上平台的标准布局。石油和天然气加工厂的设计应适当,以最大程度地提高碳氢化合物的产量,并最大程度地减少电力,供暖和制冷需求。应适当设计公用设施,以最大程度地减少燃料消耗并满足所有生产阶段的能源需求。本文提出了一种通用的方法论,以解决这些挑战,并建立在过程仿真,能量分析和优化例程的结合之上。根据生产资料和石油属性的初步估计,对可能的平台布局进行大小,评估和排名。该方法适用于三个案例研究,这些案例研究来自挪威和巴西的实际田间数据,具有不同的田间条件,流体成分(例如,井液中的CO2含量可忽略不计,中等和较高)和操作要求(例如,天然气出口,注入然后抬起)。结果表明了该方法的好处,与“照常营业”的案例相比,在整个寿命期内可节省多达25%至30%的能源,并减少了CO2排放。 (C)2019 Elsevier Ltd.保留所有权利。

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