一种新的混合式水平气液分离器设计方法

M. Fadaei, M. Ameri, Y. Rafiei, M. Hoseinzadeh
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引用次数: 0

摘要

分离器几乎是每个油气生产设施的重要组成部分。由于它们的重要性,最佳的分离器设计是至关重要的。半经验设计方法是确定分离器最佳尺寸的一种传统的、较原始的方法。然而,由于用于推导半经验相关性的简化假设,该方法只能用于获得分离器尺寸的粗略估计。本文通过实验、量纲分析和CFD模拟,提出了一种多相分离器的混合设计方法。该方法包括在中试两相分离装置上进行实验;对实验室规模的分离器进行CFD模拟,并利用实验数据对模拟结果进行验证;用量纲分析确定实际表面分离器的长细比范围;利用该程序对长细比在规定范围内的分离器进行CFD模拟,确定最佳长细比。中试两相分离装置由一个实验室规模的卧式两相分离器、泵、压缩机和一个静态混合器组成,以形成两相流,以及一个液体过滤器,从分离器流出的气体中提取液滴。然后,通过成像和称重过程确定被捕获液滴的直径和重量。用实验数据对CFD模型进行了验证(相对误差小于8%)。通过这些步骤,确定了South Pars气田第9期生产井的地面分离器的尺寸。本研究的重要成果之一是为表面分离器的优化设计提供了必要的依据。
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A NOVEL HYBRID METHOD TO DESIGN HORIZONTAL GAS-LIQUID SEPARATORS
Separators are a vital part of almost every oil and gas production facility. Because of their importance, optimal separator design is critical. Semi-empirical design method is a conventional and more primitive way of determining the optimal dimensions for separators. However, because of the simplifying assumptions used to derive semi-empirical correlations, this method can only be used to obtain a rough estimate for separator dimensions. In this study, a novel hybrid method to design multiphase separators is presented using experimentation, dimensional analysis, and CFD simulation. This method contains performing experiments on a pilot two-phase separation unit; CFD simulating of the laboratory-scale separator and validating the simulation using the experimental data; determining a range for the slenderness ratio of practical surface separators using dimensional analysis; CFD simulating the separators with slenderness ratios within the specified range using the procedure, and determining the optimum slenderness ratio. The pilot two-phase separation unit consists of a laboratory-scale horizontal two-phase separator, pumps, compressors and a static mixer to create a two-phase flow, and a liquid filter to extract liquid droplets from the separator gas outflow. The diameter of the trapped liquid droplets and their weight are, then, determined by imaging and weighing processes. The CFD model is validated with the experimental data (with less than 8% relative error). Using these steps, the dimensions of a surface separator for one of the production wells located in phase 9 of South Pars gas field are determined. One of the most important achievements of this research is to provide the necessary basis for the optimal design of surface separators.
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