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Blockage Detection and Characterization in Natural Gas Pipelines by Transient Pressure-Wave Reflection Analysis

机译:天然气管道中的堵塞检测与瞬态压力波反射分析

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摘要

Pipeline blockage is a major problem in gas production and transportation processes. Safety and economic costs of pipeline blockages are compelling the industry to design innovative means for early detection of partial blockages along pipe systems as a preventive measure. This paper presents a simple numerical model to be used for accurate blockage characterization in natural gas pipelines. The transport phenomenon is modeled with a quasi-ID set of partial differential equations for isothermal natural gas flow in pipes. The variable area formulation maintains the simplicity of a ID formulation and yet allows for the complex geometries associated with natural gas pipeline blockages. Viscous effects are also included in the formulation of the governing equations, and a cubic equation of state is incorporated into the model to provide the quasi-compositional effect of real gases without the complexities of a fully compositional model. The generalized Newton-Raphson technique is used to solve the piece-wise finite-volume formulation iteratively as an optimization problem with pressure and velocity as perturbed variables. Reflected pressure waves observed at the pipe inlet node were analyzed for blockage characterization. It was observed that viscous losses have no effect on blockage length and location prediction accuracy, but has significant impact on the accuracy of blockage severity predictions.
机译:管道堵塞是天然气生产和运输过程中的主要问题。管道堵塞的安全性和经济成本迫使行业设计创新手段,以及早发现管道系统中的局部堵塞,以作为预防措施。本文提出了一个简单的数值模型,可用于天然气管道的准确阻塞特征分析。用管道中等温天然气流动的准ID集的偏微分方程组模拟运输现象。可变面积的配方保持了ID配方的简单性,但允许与天然气管道堵塞相关的复杂几何形状。粘性效应也包含在控制方程的公式中,并且将状态立方方程纳入模型中,以提供真实气体的准组成效应,而无需完全组成模型的复杂性。广义牛顿-拉夫森技术被用来迭代求解分段有限体积公式,作为压力和速度为扰动变量的优化问题。分析了在管道入口节点处观察到的反射压力波,以进行堵塞特征分析。据观察,粘性损失对阻塞长度和位置预测精度没有影响,但对阻塞严重性预测的准确性有重大影响。

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