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Improving cyclone performance by proper selection of the exit pipe

机译:通过正确选择出口管来提高旋风除尘器的性能

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Cyclone performance is determined by pressure drop and collection efficiency. This study aims to optimize the dimensions of the exit pipe to improve cyclone performance. A numerical technique was used which is based on an Eulerian-Lagrangian approach. The behavior of the cyclone was studied by solving the three-dimensional, incompressible turbulent flow governing equations. The turbulent flow was modeled by using Reynolds Stress Model. Particle trajectories were obtained by solving the particle equation of motion. The collection efficiency was obtained by releasing a specified number of particles at the inlet of the cyclone and by counting the collected particles. The model was verified by comparing the numerical results to published experimental measurements. It was found through this study that increasing exit pipe diameter decreases the pressure drop through the cyclone and affects also the collection efficiency while exit pipe length does not affect cyclone performance significantly. It was concluded that the performance of the standard cyclone can be improved by prober selection for the diameter of the exit pipe. The data obtained through this study was represented in performance maps. These maps allowed the selection of the exit pipe diameter to obtain the maximum collection efficiency while avoiding excessive pressure drop.
机译:旋风分离器的性能取决于压降和收集效率。这项研究旨在优化出口管的尺寸,以提高旋风分离器的性能。使用了基于欧拉-拉格朗日方法的数值技术。通过求解三维不可压缩湍流控制方程,研究了旋风分离器的性能。使用雷诺应力模型对湍流进行建模。通过求解运动的粒子方程获得粒子轨迹。收集效率是通过在旋风分离器的入口处释放指定数量的颗粒并计算收集到的颗粒而获得的。通过将数值结果与已发布的实验测量值进行比较来验证模型。通过这项研究发现,增加出口管的直径会减小通过旋风分离器的压降,并且还会影响收集效率,而出口管的长度不会显着影响旋风分离器的性能。结论是,通过选择出口管直径的探针可以提高标准旋风分离器的性能。通过这项研究获得的数据以性能图表示。这些图允许选择出口管直径以获得最大的收集效率,同时避免过度的压降。

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