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Modeling and simulation of the drying process of natural gas pipeline using vacuum drying method

机译:使用真空干燥法对天然气管道干燥过程的建模与仿真

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Vacuum drying is one of the most effective methods to protect submarine natural gas pipes from blockage caused by hydrate and internal corrosion. This article presents a model for analyzing the mass, momentum, and energy transfer processes in pipeline drying with vacuum drying method. Model of the evaporation rate of liquid water is derived from Hertz-Knudsen-Schrage equation. Finite volume method is employed to discretize the governing equations with an upwind implicit scheme in present work, and 2nd order upwind scheme for energy equation is adopted to weaken numerical dissipation. Non-linear algebraic equations after discretization are solved by Newton-Raphson method. Reliability and accuracy of this model are validated via three experimental cases. Numerical results coincide well with the experimental data, and the relative errors of the calculated drying time are 1.7% in Case 1, 1.2% in Case 2, and 5.5% in Case 3. Finally, the dynamic characteristics of the vacuum drying process are analyzed such as dynamic distributions of pressure, temperature, mass flow rate, and liquid holdup. Mathematical model and algorithm developed in present work provide understanding and insights of the vacuum drying process, which aids in determining cost-effective pipeline drying scheme.
机译:真空干燥是保护潜艇天然气管免受水合物和内部腐蚀引起的堵塞的最有效方法之一。本文介绍了用真空干燥方法分析管道干燥中的质量,动量和能量转移过程的模型。液体水蒸发速率的模型来自赫兹-Chaudsen-Schrage方程。有限体积法用于将带有在当前工作中的上冲隐式方案的控制方程离散化,采用第二阶Upwind方程来削弱数值耗散。在离散化之后的非线性代数方程由Newton-Raphson方法解决。通过三种实验案例验证了该模型的可靠性和准确性。数值结果与实验数据吻合良好,并且计算出的干燥时间的相对误差为1.7%,在2例2中为1.2%,在3.最后,分析了真空干燥过程的动态特性如压力,温度,质量流量和液体堆积的动态分布。现有工作中开发的数学模型和算法提供了真空干燥过程的理解和见解,有助于确定经济有效的管道干燥方案。

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