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Optimal design of drainage channel geometry parameters in vane demister liquid-gas separators

机译:叶片除雾器液气分离器排水通道几何参数的优化设计

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Vane liquid-gas demisters are widely used as one of the most efficient separators. To achieve higher liquid disposal and to avoid flooding, vanes are enhanced with drainage channels. In this research, the effects of drainage channel geometry parameters on the droplet removal efficiency have been investigated applying CFD techniques. The observed parameters are channel angle, channel height and channel length. The gas phase flow field was determined by the Eulerian method and the droplet flow field and trajectories were computed applying the Lagrangian method. The turbulent dispersion of the droplets was modeled using the discrete random walk (DRW) approach. The CFD simulation results indicate that by applying DRW model, the droplet separation efficiency predictions for small droplets are closer to the corresponding experimental data. The CFD simulation results showed that in the vane, enhanced with drainage channels, fewer low velocity sectors were observed in the gas flow field due to more turbulence. Consequently, the droplets had a higher chance of hitting the vane walls leading to higher separation efficiency. On the other hand, the parameters affect the liquid droplet trajectory leading to the changes in separation efficiency and hydrodynamic characteristic of the vane. To attain the overall optimum geometry of the drainage channel, all three geometry parameters were simultaneously studied employing 27 CFD simulation cases. To interpolate the overall optimal geometry a surface methodology method was used to fit the achieved CFD simulation data and finally a polynomial equation was proposed.
机译:叶片式液气除雾器被广泛用作最有效的分离器之一。为了实现更高的液体处理效率并避免水浸,通过排水通道增强了叶片的稳定性。在这项研究中,已使用CFD技术研究了排水通道几何参数对液滴去除效率的影响。观察到的参数是通道角度,通道高度和通道长度。通过欧拉方法确定气相流场,并使用拉格朗日方法计算液滴流场和轨迹。使用离散随机游走(DRW)方法对液滴的湍流分散进行建模。 CFD仿真结果表明,通过应用DRW模型,小液滴的液滴分离效率预测更接近相应的实验数据。 CFD仿真结果表明,在叶片中,随着排水通道的增加,由于更大的湍流,在气流场中观察到的低速扇区更少。因此,液滴更有可能撞击叶片壁,从而导致更高的分离效率。另一方面,这些参数影响液滴的轨迹,导致叶片分离效率和流体动力学特性的变化。为了获得排水通道的总体最佳几何形状,同时使用27个CFD模拟案例同时研究了所有三个几何参数。为了对整体最佳几何进行插值,使用表面方法对获得的CFD模拟数据进行拟合,最后提出了多项式方程。

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