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Real-Time Composition Measurement for Fiscal, Allocation and Process Optimization

机译:财政,分配和过程优化的实时成分测量

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The global oil industry has a large installed base of mature offshore platforms and facilities, often with declining production. A trend is to use this infrastructure to produce and process new discoveries, reducing time to production and recovery costs while extending infrastructure operating life. However, production of new oil fields using existing infrastructure presents unique technical challenges. Accurate, repeatable and reliable measurement of produced oil and water is vital for fiscal, allocation or royalty purposes, as well as automation and control. This challenging measurement requires high-energy mixing with low power consumption and negligible pressure loss in a very small footprint. The measurement uncertainty of net oil (oil minus water) for fiscal and allocation purposes is defined by international standards and contracts. With the increase in the use of declining facilities, a new technical challenge has emerged. To be able to accurately allocate the new fluids to the field, partner or different tax regimes they must be measured to fiscal accuracy prior to being mingled with other fluids for processing. Oil and water measurements are often performed at the output of first stage separation. This creates a challenge, as the fluids are close to the critical pressure, meaning that any pressure drop potentially results in cavitation. In addition, production pipelines are generally less than 8 inches, so any obstruction causes an undesired pressure loss or restriction. These requirements highlighted the need for an effective, nonintrusive mixing device to enable operators to accurately measure and control the new fields being developed with today's greater capital constraints. Research was conducted, as part of a Joint Industry Project, at Imperial College in London followed by extensive computation fluid dynamics modeling to develop a conceptual design. The design was independently tested at the National Engineering Laboratory at East Kilbride, UK. The test independently verified that the design met the uncertainty performance criteria of the international API and ISO sampling standards across the wide range of water cut seen in both mature and new production. Once verified, the design was scaled for operating line sizes seen in the targeted application, and early deployment sites were identified. The paper discusses the application envelope identified by offshore operators and the technical challenges they were seeking to solve. It follows the design process, highlighting the choices made and the results and methodology used in the independent testing to verify performance.
机译:全球石油工业拥有大型成熟的海上平台和设施底座,往往正在生产下降。趋势是利用这一基础设施来生产和处理新发现,减少生产和恢复成本的时间,同时扩大基础设施的运行寿命。然而,使用现有基础设施的新油田的生产具有独特的技术挑战。对生产油和水的准确,可重复和可靠的测量对于财政,分配或特许权使用权力至关重要,以及自动化和控制。这种具有挑战性的测量需要高能量混合,并且在非常小的占地面积中具有低功耗和可忽略的压力损失。财政和分配目的的净油(油烟水)的测量不确定性由国际标准和合同定义。随着使用下降的工厂的增加,出现了新的技术挑战。为了能够准确地将新流体分配到现场,合作伙伴或不同的税收制度,在与其他流体混合之前,必须测量它们的财政准确性。油和水测量通常在第一阶段分离的输出处进行。这产生了挑战,因为流体接近临界压力,这意味着任何压降可能导致空化。此外,生产管道通常小于8英寸,因此任何阻塞都会导致不期望的压力损失或限制。这些要求突出了有效的非流体混合装置的需要,使运营商能够准确地测量和控制随着当今更大的资本限制开发的新领域。作为联合行业项目的一部分,在伦敦帝国学院进行了研究,随后进行了广泛的计算流体动力学建模,以发展概念设计。该设计在英国东基尔布莱德国家工程实验室独立测试。该测试独立核实,该设计符合在成熟和新生产中看到的各种水切口中的国际API和ISO采样标准的不确定性绩效标准。一旦验证,该设计被缩放以用于目标应用中所示的操作线尺寸,并确定早期部署网站。本文讨论了海上运营商确定的应用包座,以及他们寻求解决的技术挑战。它遵循设计过程,突出显示所做的选择和独立测试中使用的结果和方法来验证性能。

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