基于地面数据的气体静态液体梯度组合分析模型的负载气井液位计算:第2部分

A. Nagoo, L. Harms, W. Hearn
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引用次数: 0

摘要

作为本系列的第二部分,我们将通过静态再循环液柱和分析逆流多相流模型,对常规和非常规水平气井的液体加载和井筒液体回流后加载过程进行深入研究。这部分工作的重点是在理解与人工举升最相关的多相流方面的一个步骤变化-逆流液体加载和气体通过液体柱的流动。结果表明,以往常用的流动井底压力关联中使用的传统的并行流动原理和流型图并不适用,也不能解释由于流动反转导致的加载气井双压力梯度剖面的变化。因此,这项工作为人工举升界对所有产液气井中普遍存在的逆流和静态液柱多相流行为的讨论和关注的改变奠定了基础。我们展示并现场验证了一种新的计算能力,可以执行多相逆流液体加载计算,动态加载气井油管/套管,并计算总压力梯度,随着这些井的静态液体柱气含率的增加而变化。此外,我们分析了逆流过程,并在此领域已有研究的背景下,重新定义了液体流动逆转的开始。我们的结果仅用于从基本的地面油田数据模拟加载气井的液位。这代表了低成本、低碳气井生产优化的进步,以及基于模拟的实时井下诊断的机会,以确定数字液位和可靠准确的负载气井FBHP,而无需现场访问和设备运行的高碳成本。在生产液体的气井的可靠数字孪生应用方面,我们的新方法可以在井口上自动执行,这是一种“气井液位数字传感器”,该解决方案利用可用的SCADA地面数据,并将其转换为自动计算井下压力、流量和井液位,以响应动态井操作条件。在这项工作中,我们首次仅从地面数据同时计算了负载气井的FBHP和气态液体液位。无论是含液气井还是上方有气液柱的抽油井,气液柱对地层施加的显著压力梯度(δ - p)对于正确理解和分析井的供应能力,提高生产作业中的井下产量都具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Liquids Level Calculation in Loaded Gas Wells from Surface Data Using Combined Analytical Modeling of Gaseous Static Liquids Gradient: Part 2
As the second part of this series, we apply our much improved understanding of gas flow through static recirculating liquid columns and analytical countercurrent multiphase flow modeling to both conventional and unconventional horizontal gas well liquids loading and a deep dive of the process of wellbore liquids flow reversal post-loading. This part of our work focuses on a step change in understanding the aspect of multiphase flow that is most pertinent to artificial lift - countercurrent liquids loading and gas flow through liquid columns. It is shown that traditional concurrent flow principles and flow pattern maps used in prior commonly used flowing bottom hole pressure correlations do not apply and cannot explain the changing dual pressure gradient profiles in loaded gas wells as a result of flow reversal. Therefore, this work lays the foundation for a change in conversation and focus among the artificial lift community towards countercurrent and static liquid column multiphase flow behaviors prevalent in all liquids-producing gas wells. We show and field-validate a new computational ability to perform multiphase countercurrent liquids loading calculations that dynamically loads a gas well tubing/casing and the calculations of total pressure gradient that varies with the increasing gas holdup along the static liquid columns of these wells. Additionally, we analyze the process of countercurrent flow and put forward a redefinition of onset of liquids flow reversal in the proper context of prior studies in this field. Our results are used to simulate the liquid levels in loaded gas wells from only basic surface field data. This represents an advance towards low-cost, low-carbon gas well production optimization and the opportunity of simulation-based real-time downhole diagnostics to determine digital liquid levels and reliably accurate FBHP in loaded gas wells without the high-carbon costs of wellsite visits and equipment runs. In terms of reliable digital twin applications for gas wells producing liquids, our new method can be performed in an autonomous way on a wellhead - a sort of "gas well liquid level digital sensor" - a solution that takes advantage of available SCADA surface data and converts it to automated calculations of downhole pressures, flow rates and well liquid levels in response to dynamic well operating conditions. For the first time in the industry, we present in this work a simultaneous calculation of loaded gas well FBHP and gaseous liquids level from only surface data. In either cases of liquids loaded gas wells or pumping oil wells with gaseous liquid columns above them, the significant pressure gradient (delta-P) that gaseous liquid columns impose on the formation is of great importance in correctly understanding and analyzing well supply capacity and enhancing downhole production rates during production operations.
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