Prediction of High Viscosity Liquid/Gas Two-Phase Slug Length in Horizontal and Slightly Inclined Pipelines

O. Shaaban, E. Al-Safran
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引用次数: 1

Abstract

The production and transportation of high viscosity liquid/gas two-phase along petroleum production system is a challenging operation due to the lack of understanding the flow behavior and characteristics. In particular, accurate prediction of two-phase slug length in pipes is crucial to efficiently operate and safely design oil well and separation facilities. The objective of this study is to develop a mechanistic model to predict high viscosity liquid slug length in pipelines and to optimize the proper set of closure relationships required to ensure high accuracy prediction. A large high viscosity liquid slug length database is collected and presented in this study, against which the proposed model is validated and compared with other models. A mechanistic slug length model is derived based on the first principles of mass and momentum balances over a two-phase slug unit, which requires a set of closure relationships of other slug characteristics. To select the proper set of closure relationships, a numerical optimization is carried out using a large slug length dataset to minimize the prediction error. Thousands of combinations of various slug flow closure relationships were evaluated to identify the most appropriate relationships for the proposed slug length model under high viscosity slug length condition. Results show that the proposed slug length mechanistic model is applicable for a wide range of liquid viscosities and is sensitive to the selected closure relationships. Results revealed that the optimum closure relationships combination is Archibong-Eso et al. (2018) for slug frequency, Malnes (1983) for slug liquid holdup, Jeyachandra et al. (2012) for drift velocity, and Nicklin et al. (1962) for the distribution coefficient. Using the above set of closure relationships, model validation yields 37.8% absolute average percent error, outperforming all existing slug length models.
水平及微倾斜管道中高粘度液/气两相段塞长度预测
由于缺乏对高粘度液/气两相流体流动特性的认识,高粘度液/气两相流体沿石油生产系统的开采和输送是一项具有挑战性的作业。特别是,准确预测管道中两相段塞长度对于油井和分离设施的高效运行和安全设计至关重要。本研究的目的是建立一个机制模型来预测管道中高粘度液体段塞长度,并优化所需的适当关闭关系集,以确保高精度预测。本研究收集并提供了一个大的高粘度液体段塞长度数据库,并与其他模型进行了验证和比较。基于两相段塞单元的质量和动量平衡的第一原理,导出了一种机械段塞长度模型,该模型需要一组其他段塞特性的闭合关系。为了选择合适的闭包关系集,使用大段塞长度数据集进行了数值优化,以最小化预测误差。为了确定高粘度段塞长度条件下的段塞流封闭关系,研究人员对数千种不同段塞流封闭关系的组合进行了评估,以确定最适合所提出的段塞流长度模型的关系。结果表明,所建立的段塞长度机理模型适用于较宽的液体粘度范围,并且对所选择的闭合关系敏感。结果表明,对于段塞流频率,最佳关闭关系组合为Archibong-Eso等人(2018),对于段塞流含液率,最佳关闭关系组合为Jeyachandra等人(2012),对于漂移速度,最佳关闭关系组合为Nicklin等人(1962)。使用上述闭包关系集,模型验证产生37.8%的绝对平均误差,优于所有现有的段塞长度模型。
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