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Optimization and experimental investigation in bottom inlet cyclone separator for performance analysis

机译:底部进气旋风分离器性能分析的优化与实验研究

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The chemical engineering industries are utilizing the bottom inlet cyclone separator with venturi for separating the particles from an air/gas medium. For improving the performance of this equipment, important geometrical features such as venturi inlet width, total height of the cyclone and body height of the cyclone are considered for optimization. Central composite design was used in response surface methodology (RSM) to fit the regression equation. This regression equation was evaluated by analysis of variance (ANOVA). Then, this polynomial equation was optimized by particle swarm optimization (PSO) for minimizing the cut-off diameter. These optimized results were compared with genetic algorithm (GA) results. Based on this optimized result, an experimental setup was created for validation purpose. The experimental results were compared with GA and PSO results. A good agreement was obtained between these results. The magnesium particles were utilized for predicting the cut-off diameter of the new design. The Stokes number of this new design was less when compared with the mathematical model. The new design gives better performance when compared with the mathematical model. The numerical simulation was executed for predicting the particle collection efficiency, cut-off diameter and flow pattern inside the cyclone. The results were compared with the mathematical model and venturi inlet tangential entry cyclone.
机译:化工行业正在利用带有文丘里管的底部入口旋风分离器从空气/气体介质中分离出颗粒。为了提高该设备的性能,考虑了重要的几何特征(如文丘里管入口宽度,旋风分离器的总高度和旋风分离器的主体高度)以进行优化。中心复合设计用于响应面方法(RSM)以拟合回归方程。该回归方程通过方差分析(ANOVA)进行评估。然后,通过粒子群优化(PSO)对多项式方程进行优化,以最小化截止直径。将这些优化结果与遗传算法(GA)结果进行了比较。基于此优化结果,创建了用于验证目的的实验装置。将实验结果与GA和PSO结果进行了比较。这些结果之间取得了良好的协议。镁颗粒用于预测新设计的截止直径。与数学模型相比,这种新设计的斯托克斯数更少。与数学模型相比,新设计具有更好的性能。进行了数值模拟,以预测旋风分离器内的颗粒收集效率,截留直径和流型。将结果与数学模型和文丘里管入口切向进入旋风分离器进行了比较。

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