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Fluid-structure interaction computational analysis of flow field, shear stress distribution and deformation of three-limb pipe

机译:三肢管道流场,剪切应力分布和变形的流固耦合计算分析

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As a vulnerable component of piping systems, three-limb pipe usually fails due to flow erosion or deformation. In this study, computational fluid dynamic (CFD) models and a fluid-structure interaction computational method are used to investigate the flow erosion and flow induced deformation of a three-limb pipe used in oil transportation. The flow characteristics of oil flow including pressure and velocity distribution are captured based on calculating three-dimensional Reynolds-Averaged Navier-Stokes (RANS) equations. And realizable K-ε turbulence model is applied to model the turbulence. The effects of branch inlet flow rate, diameter ratio of branch and main tubes and merging angle of three-limb pipe on flow characteristics, shear stress distribution and deformation of pipe are analyzed based on a series of numerical simulations. The numerical results show that both flow field and deformation of pipe are sensitive to the structural changes and branch inlet velocity changes. Higher importing mass flow rate or 90° merging angle can lead to more severe flow erosion and greater deformation.
机译:作为管道系统的脆弱组件,三臂管通常会由于流蚀或变形而失效。在这项研究中,使用计算流体动力学(CFD)模型和流固耦合计算方法来研究用于输油的三肢管道的流蚀和流致变形。通过计算三维雷诺平均Navier-Stokes(RANS)方程来捕获包括压力和速度分布在内的油流的流动特性。并将可实现的K-ε湍流模型应用于湍流建模。在一系列数值模拟的基础上,分析了支管进口流量,支管直径比,三支管的合流角度对流动特性,剪应力分布和管形变形的影响。数值结果表明,管道的流场和变形都对结构变化和支流入口速度变化敏感。较高的进口质量流速或90°合并角会导致更严重的流蚀和更大的变形。

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