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Volume averaging of multiphase flows with hydrate formation in subsea pipelines

机译:在海底管道中形成水合物的多相流的体积平均值

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摘要

In oil and gas pipeline operations, the gas, oil, and water phases simultaneously move through pipe systems. The mixture cools as it flows through subsea pipelines, and forms a hydrate formation region, where the hydrate crystals start to grow and may eventually block the pipeline. The potential of pipe blockage due to hydrate formation is one of the most significant flow-assurance problems in deep-water subsea operations. Due to the catastrophic safety and economic implications of hydrate blockage, it is important to accurately predict the simultaneous flow of gas, water, and hydrate particles in flowlines. Currently, there are few or no studies that account for the simultaneous effects of hydrate growth and heat transfer on flow characteristics within pipelines.udThis thesis presents new and more accurate predictive models of multiphase flows in undersea pipelines to describe the simultaneous flow of gas, water, and hydrate particles through a pipeline. A growth rate model for the hydrate phase is presented and then used in the development of a new three-phase model. The conservation equations of mass, momentum, and energy are formulated to describe the physical phenomena of momentum and heat transfer between the fluid and the wall. The governing equations are solved based on an analytical-numerical approach using a Newton-Raphson method for the nonlinear equations. An algorithm was developed in Matlab software to solve the equations from the inlet to the outlet of the pipeline. The developed models are validated against a single-phase model with mixture properties, and the results of comparative studies show close agreement.udThe new model predicts the volume fraction and velocity of each phase, as well as the mixture pressure and temperature profiles along the length of the pipeline. The results from the hydrate growth model reveal the growth rate and location where the initial hydrates start to form. Finally, to assess the impact of certain parameters on the flow characteristics, parametric studies have been conducted. The results show the effect of a variation in the pipe diameter, mass flow rate, inlet pressure, and inlet temperature on the flow characteristics and hydrate growth rates.
机译:在石油和天然气管道运营中,气相,石油和水相同时流经管道系统。混合物在流经海底管道时冷却,并形成水合物形成区域,水合物晶体在该区域开始生长,并最终可能堵塞管道。在深水海底作业中,由于水合物的形成而引起的管道堵塞的可能性是最重要的流量保障问题之一。由于水合物堵塞的灾难性安全性和经济意义,因此准确预测流线中气体,水和水合物颗粒的同时流动非常重要。目前,很少有研究甚至没有关于水合物生长和热传递对管道内流动特性的同时影响的研究。水,并通过管道水合颗粒。提出了水合物相的生长速率模型,然后将其用于开发新的三相模型。建立了质量,动量和能量守恒方程,以描述动量和流体与壁之间的热传递的物理现象。该控制方程是基于解析数值方法,使用牛顿-拉夫森方法求解非线性方程。在Matlab软件中开发了一种算法来求解从管道入口到出口的方程。所开发的模型已针对具有混合物特性的单相模型进行了验证,比较研究的结果显示出一致的结果。 ud新模型可预测各相的体积分数和速度,以及沿混合物的混合物压力和温度曲线管道的长度。水合物生长模型的结果揭示了初始水合物开始形成的生长速率和位置。最后,为了评估某些参数对流动特性的影响,已经进行了参数研究。结果表明,管径,质量流量,入口压力和入口温度的变化对流量特性和水合物生长速率的影响。

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    Zeinali Torbati Reza;

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  • 年度 2015
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