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Neural network and CFD-based optimisation of square cavity and curved cavity static labyrinth seals

机译:基于神经网络和CFD的方腔和曲腔静态迷宫式密封优化

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摘要

The pressure drop characteristics for leakage of water through circular grooved, square cavity and curved cavity static labyrinth seals are investigated. A semi-theoretical model employing two new terms named virtual cavity velocity and vortex loss coefficient, to determine the pressure drop across the seal is presented. Five different square cavity labyrinth seals (SCLS) were subjected to flow visualisation tests to observe the leakage flow patterns. Computational fluid dynamic (CFD) analysis was done using Fluent commercial code. The values of the vortex loss coefficient for the SCLS at turbulent flow conditions were obtained experimentally. Using the data pool, an artificial neural network (ANN) simulation model was employed to identify the optimal SCLS configuration. Based on the insights gained, two different curved cavity labyrinth seal (CCLS) geometries were developed and optimised using parametric CFD analysis. They were visualisation tested and experimentally found to have higher pressure drops and vortex loss coefficients as compared to the SCLS configurations. The studies show that the enhanced performance is due to the presence of multiple recirculation zones within their cavities, which dissipate higher amount of leakage flow momentum.
机译:研究了通过圆形槽,方腔和弯曲腔静态迷宫式密封泄漏水的压降特性。提出了一个半理论模型,该模型使用了两个新的术语,即虚拟腔速度和涡流损耗系数,来确定整个密封件的压降。对五个不同的方腔迷宫式密封(SCLS)进行了流量可视化测试,以观察泄漏的流型。使用Fluent商业代码进行了计算流体动力学(CFD)分析。通过实验获得了在湍流条件下SCLS涡流损失系数的值。使用数据池,采用了人工神经网络(ANN)仿真模型来确定最佳的SCLS配置​​。基于所获得的见解,使用参数CFD分析开发并优化了两种不同的曲腔迷宫式密封(CCLS)几何形状。它们经过了可视化测试,并通过实验发现,与SCLS配置​​相比,它们具有更高的压降和涡流损失系数。研究表明,增强的性能是由于在其腔体内存在多个再循环区域而造成的,这些再循环区域消散了大量的泄漏流动量。

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