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Compact Separation - Concept Study - Experimental and Simulation Study of Oil-Water Multiphase Flow in Helically Coiled Pipe

机译:紧凑型分离-概念研究-螺旋管中油水多相流的实验和模拟研究

摘要

This master thesis is written as part of a SUBPRO project whose long term goal is to identify multiphase flow separation performance of a helically coiled pipe and determine if it s viable for further industrial development. SUBPRO is an applied research center consisting of relevant contributors from the industry and the Norwegian University of Science and Technology. One of their stated goals is to «develop new knowledge and technology to meet future challenges in subsea production and processing». This thesis is a continuation of the work previously done in the specialization project «Compact Separation; Concept Study of Helically Coiled Pipe and Preparation for Experimental Setup» and will later be continued as a PhD study. The objective of this thesis is to develop an experimental setup and conduct experiments to qualitatively determine the potential of using a helically coiled pipe as a compact separator or flow conditioner and its potential for further industrial development. In the end, recommendations based on the results is to be made. In addition, CFD simulations will be performed to support the data from the experiments. Main work done in this project consists of: Development of experimental setup. This includes completion of design, ordering of parts, construction, instrumentation and system testing and calibration. Generation of CAD drawings and CFD meshing for simulations. Simulations in Computational Fluid Dynamics. Execution of experiments with oil-water multiphase flow with varying oil ratio and flow rates.Simulations in Ansys CFX were performed so that numerical results that was difficult to obtain visually could be extracted. This includes separation performance, secondary flow and turbulence. The geometry used in the simulations was limited to the loop and one meter of straight section before and after the loop. Simulations were primarily done with mixture model but results from particle model simulations are also evaluated. The simulations indicated relatively low separation performance but showed a significant reduction in turbulence caused by the loop compared to a straight pipe section with the same length. The experiments conducted featured an oil-water phase in a helically coiled pipe. Photographs were taken of the flow at the inlet and outlet of the loop for a range of oil ratios and flow rates and were used to visually identify if any phase segregation occurred. None of the photos showed any indication of phase segregation in the experimental range. The flow regime at both the inlet and outlet was identified as various degrees of emulsion were a low oil ratio gave a pink emulsion with low degree of translucency and a high oil ratio gave a reddish emulsion with some translucency. The experiments were affected by problems with emulsion buildup in the separator, especially at low oil ratios, and turbidity in the water which gave the water a white color, hence reduced contrast to the oil. Due to limited time, only one coil geometry was tested. Less comprehensive tests with air-oil flow showed segregation of these two phases as stratified flow. The experimental study and results from the simulations gave no indications that the helical coil could be applicable as a compact separator for oil-water flows. However, due to the limited experimental range and sources of error this experimental study can t completely disprove the concept studied concept for oil-water flow. Improvements of the experimental setup including the ones mentioned in Recommendations for further work could yield other results. The results from the simulations did show a significant reduction in turbulence from the loop compared to a straight pipe which may give it applicability as a flow conditioner.
机译:该硕士论文是SUBPRO项目的一部分,该项目的长期目标是确定螺旋管的多相流分离性能,并确定其是否可用于进一步的工业发展。 SUBPRO是一个应用研究中心,由来自该行业和挪威科技大学的相关贡献者组成。他们提出的目标之一是“开发新的知识和技术,以应对海底生产和加工的未来挑战”。本论文是先前在“紧凑分离;精简分离”专业项目中完成的工作的延续。螺旋管的概念研究和实验装置的准备»,并将继续作为博士研究。本文的目的是开发实验装置并进行实验,以定性确定使用螺旋盘管作为紧凑型分离器或流量调节器的潜力及其在进一步工业发展中的潜力。最后,将根据结果提出建议。此外,将执行CFD仿真以支持实验数据。该项目完成的主要工作包括:开发实验装置。这包括设计的完成,零件的订购,构造,仪器仪表以及系统测试和校准。生成CAD工程图和CFD网格用于仿真。计算流体动力学仿真。在油比和流量不同的情况下执行油水多相流实验。在Ansys CFX中进行了模拟,以便可以提取难以直观获得的数值结果。这包括分离性能,二次流和湍流。在模拟中使用的几何形状仅限于环路以及环路前后的一米直截面。模拟主要是使用混合模型完成的,但也会评估粒子模型模拟的结果。模拟显示相对较低的分离性能,但与具有相同长度的直管段相比,显示了由环路引起的湍流明显减少。进行的实验以螺旋盘管中的油-水相为特征。拍摄了一系列油比和流速下环路入口和出口处的流动的照片,并用于视觉识别是否发生了相分离。没有照片显示在实验范围内有任何相分离迹象。确定了在入口和出口处的流动状态,因为乳液的程度各不相同:低油比使粉红色乳液具有低透明度,而高油比使乳液红色带些透明度。实验受到以下问题的影响:分离器中的乳液堆积,特别是在低油比下,以及水中的浑浊使水呈白色,从而降低了与油的对比度。由于时间有限,仅测试了一种线圈几何形状。对空气-油流的较不全面的测试表明,这两个相的分离为分层流。实验研究和仿真结果没有表明螺旋线圈可以用作油水流的紧凑型分离器。然而,由于有限的实验范围和误差来源,该实验研究无法完全证明所研究的油水流概念。实验设置的改进(包括建议书中提到的用于进一步工作的改进)可能会产生其他结果。模拟的结果确实表明,与直管相比,环路产生的湍流明显减少,这可能使其可以用作流量调节器。

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