Motion and distribution of gas-solid two-phase flow in elbow with two-phase deflector

被引:0
作者
Pan X. [1 ]
Ma C. [1 ]
Cui L. [1 ]
机构
[1] National Engineering Laboratory for Coal-fired Pollutants Emission Reduction, Shandong University, Jinan, 250061, Shandong
来源
Huagong Xuebao/CIESC Journal | 2016年 / 67卷 / 06期
基金
中国国家自然科学基金;
关键词
Distribution; Elbow; Homogenization; Numerical simulation; Two-phase flow;
D O I
10.11949/j.issn.0438-1157.20151633
中图分类号
学科分类号
摘要
In view of the problem that gas-solid two-phase flow is not evenly distributed in the elbow of the entrance of flue gas pollutants removal system in the coal-fired power plant, a new two-phase deflector structure was put forward. CFD numerical simulation was employed to analyze the uniform effect of two-phase deflector and conventional deflector. The effect of the two-phase deflector on the distribution law of flow velocity and particle mass, and the effect of the plate shape and the plate angle on the uniform effect of two-phase deflector were simultaneously studied. Finally, the optimum structure of the two-phase deflector was obtained by the Design-Expert response surface method and CFD. The optimal structure was applied to the industrial test and the final result of the calculation and industrial test data were compared. The results showed that it is better to install two-phase deflector than deflector or delta wing baffle in the elbow because of the more uniform distribution and lower pressure drop. The flow velocity distribution and the particle mass concentration distribution changed gradually with the increase of the angle between the plates and the pressure drop of the elbow increased with the angle between the plates too. The optimum structure was the two-phase deflector with the angle of 75.49° and straight plate type. The comparison between the simulation and field measurements showed good agreement. The numerical simulation method proposed by this paper can be used to calculate gas-solid flows in the ESP inlet elbow with complex internal structure in detail. © All Right Reserved.
引用
收藏
页码:2308 / 2317
页数:9
相关论文
共 22 条
[1]  
Xu C., Liang C., Zhou B., Et al., HHT analysis of electrostatic fluctuation signals in dense-phase pneumatic conveying of pulverized coal at high pressure, Chemical Engineering Science, 65, 4, pp. 1334-1344, (2010)
[2]  
Jassim E., Benson S.A., Bowman F.M., Et al., The influence of fragmentation on the behavior of pyrite particles during pulverized coal combustion, Fuel Processing Technology, 92, 5, pp. 970-976, (2011)
[3]  
Chinnayya A., Chtab A., Shao J.Q., Et al., Characterization of pneumatic transportation of pulverised coal in a horizontal pipeline through measurement and computational modelling, Fuel, 88, 12, pp. 2348-2356, (2009)
[4]  
Dritselis C.D., Vlachos N.S., Large eddy simulation of gas-particle turbulent channel flow with momentum exchange between the phases, International Journal of Multiphase Flow, 37, 7, pp. 1-16, (2011)
[5]  
Akilli H., Levy E.K., Sahin B., Gas-solid flow behavior in a horizontal pipe after a 90° vertical-to-horizontal elbow, Powder Technology, 116, 1, pp. 43-52, (2001)
[6]  
Yilmaz A., Levy E.K., Formation and dispersion of ropes in pneumatic conveying, Powder Technology, 114, 1, pp. 168-185, (2001)
[7]  
Cai J., Zhong W.Q., Yuan Z.L., Modeling of gas-solid multi-way coupling of fluidization of slender particles in riser, CIESC Journal, 66, 11, pp. 4342-4350, (2015)
[8]  
Gu X., Zhu P.N., Liu M.S., Et al., Modeling of gas-solid multi-way coupling of fluidization of slender particles in riser, CIESC Journal, 63, 12, pp. 3839-3846, (2012)
[9]  
Li X.P., Hong T., Gao Z.L., Motion and distribution of catalyst particles in pipe system combined with elbow and diverging tube, Journal of Central South University (Science and Technology), 43, 12, pp. 4722-4728, (2012)
[10]  
Wang F.J., Computational Fluid Dynamics Analysis: CFD Software Principles and Applications, (2004)