Density Measurement of Three-Phase Flows Inside of Vertical Piping Using Planar Laser Induced Fluorescence PLIF

A. McCleney, K. Supak
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Abstract

Planar laser induced fluorescence (PLIF) is a measurement technique that can be used to provide a laboratory reference for validating the performance of field instrumentation that either directly measures mixture density or infers it from a combination of ancillary techniques. PLIF density measurements offer high-speed response and the ability to resolve minute flow features in transient flow patterns. Fundamentally, PLIF can also be used to verify multiphase flow models and predictive tools that are used for designing production piping. The use of PLIF to determine an instantaneous mixture density of two-phase flows has been successfully accomplished in previous fundamental laboratory studies found in literature. However, the use of this technique to determine the mixture density of three-phase flows for field-related scenarios has not been previously evaluated. To assess PLIF as a potential reference measurement system, a testing effort was undertaken to measure the instantaneous mixture density from a comingled oil-gas, water-oil, and oil-water-gas flow that was subjected to slug, churn, and bubble transient flow conditions inside of vertical piping. The objective of this work was to compare and validate the results obtained using the PLIF measurement approach against a commercially available gamma densitometer and tomography system for a variety of flowing conditions. The PLIF technique was able to resolve transient flow features and density values for both two-phase and three-phase flows through the piping. Distinct slug flow features such as the slug head, gas pocket, pocket collapse, and the tail were captured by PLIF and were observable in the raw image sequence captured by a high-speed camera. Additionally, the results for a variety of water-oil-gas flowing conditions were within 3% difference of a mixture density model that was calculated from liquid and gas flow measurements utilized in the test facility. The comparison of the PLIF results to the reference instrumentation indicates that this technique is successful at obtaining a mixture density for steady and transient oil, water, and gas comingled flows.
利用平面激光诱导荧光PLIF测量垂直管道内三相流动密度
平面激光诱导荧光(PLIF)是一种测量技术,可用于为验证现场仪器的性能提供实验室参考,这些仪器要么直接测量混合物密度,要么从辅助技术的组合中推断出来。PLIF密度测量提供高速响应,并能够解决瞬态流动模式中的微小流动特征。从根本上说,PLIF还可以用于验证多相流模型和用于设计生产管道的预测工具。使用PLIF来确定两相流的瞬时混合密度已经成功地完成了以前在文献中发现的基础实验室研究。然而,在油田相关的情况下,使用这种技术来确定三相流的混合密度之前还没有进行过评估。为了评估PLIF作为一种潜在的参考测量系统,研究人员进行了一项测试,测量了垂直管道内段塞流、搅拌流和气泡瞬态流动条件下油气、水-油和油水-气混合流的瞬时混合密度。这项工作的目的是比较和验证PLIF测量方法与市售伽马密度计和层析成像系统在各种流动条件下获得的结果。PLIF技术能够解决管道中两相和三相流动的瞬态流动特征和密度值。PLIF捕获了明显的段塞流特征,如段塞头、气袋、气袋塌陷和尾部,并在高速摄像机捕获的原始图像序列中可以观察到。此外,各种水-油气流动条件下的结果与测试设施中使用的液体和气体流量测量计算的混合密度模型的差异在3%以内。PLIF结果与参考仪器的比较表明,该技术成功地获得了稳定和瞬态油、水和气混合流的混合密度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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