Chen Jihe, Jiang Zhong-An, Chen Jushi
School of Civil and Resource Engineering, University of Science and Technology Beijing, Beijing 100083, China.
ACS Omega. 2018 Oct 15;3(10):13219-13226. doi: 10.1021/acsomega.8b02043. eCollection 2018 Oct 31.
It is very important to improve the cyclone separator separation efficiency for fine particles. On the basis of the Reynolds stress model (RSM), a new two-stage cyclone separation device is modeled and the model is simulated under six kinds of air volumetric flow rate conditions. The two-stage cyclone separator was then tested in the laboratory and the experimental data were compared with the simulation data. The results show that the RSM model can predict the performance of the two-stage cyclone separation device with high accuracy. Increasing of the air volumetric flow rate can not only improve the separation efficiency of the two-stage cyclone separator, but also effectively change the classification range. Because of the centrifugal force, even if the pressure drop is low, the 1st-cyclone can completely separate particles above 5.0 μm. When the air volumetric flow rate is more than 290 m/h, the 2nd-cyclone can effectively separate the particles below 2.0 μm. The study also confirmed the nonlinear relationship between the pressure drop and the cut-off particle size and the maximum particle size. When the pressure drop exceeds a certain value, there is no longer any effect on the cut-off particle size and the maximum particle size.
提高旋风分离器对细颗粒的分离效率非常重要。基于雷诺应力模型(RSM),对一种新型两级旋风分离装置进行建模,并在六种空气体积流量条件下对该模型进行模拟。然后在实验室对两级旋风分离器进行测试,并将实验数据与模拟数据进行比较。结果表明,RSM模型能够高精度地预测两级旋风分离装置的性能。空气体积流量的增加不仅可以提高两级旋风分离器的分离效率,还能有效改变分级范围。由于离心力的作用,即使压降较低,第一级旋风分离器也能完全分离5.0μm以上的颗粒。当空气体积流量大于290m/h时,第二级旋风分离器能够有效分离2.0μm以下的颗粒。该研究还证实了压降与截止粒径和最大粒径之间的非线性关系。当压降超过一定值时,对截止粒径和最大粒径不再有任何影响。