True shape modeling of bio-particulate matter flow in an aero-cyclone separator using CFD–DEM simulation

被引:1
作者
Mahmoud A. El-Emam
Ling Zhou
Wei Dong Shi
Chen Han
机构
[1] Jiangsu University,Research Center of Fluid Machinery Engineering & Technology
[2] Alexandria University,Department of Agricultural and Biosystems Engineering
[3] Nantong University,School of Mechanical Engineering
来源
Computational Particle Mechanics | 2021年 / 8卷
关键词
Air-particle flow; Cyclonic separation; Computational fluid dynamics; Discrete element method;
D O I
暂无
中图分类号
学科分类号
摘要
The multi-phase flow of air and bio-particulate matter exists in many biological and environmental systems such as aerodynamic separating devices, fluidized bed combustion, and feed processing machinery. Integration of the computational fluid dynamics (CFD) and discrete element method (DEM) codes was performed to study bio-particle loading ratios' effect on the cyclone device performance. Every individual particle's behavior was captured by a DEM model using Newton’s equations of motion, in which CFD modeled the continuum airflow for every computational cell scale through the Navier–Stokes equation. According to the high turbulence and chaotic behavior of the continuum airflow inside the cyclone separator, Reynolds stress turbulence model (RSM) was used. The particles used for testing and modeling were conducted on two mixture types of real-heterogeneous particulate matter, namely jojoba seeds and jojoba leaves, without any fly ash. The particles were geometrically modeled using their actual dimensions and shapes, considered the first head start research approach in the cyclonic separation and purification field. The influence of the interacting particle–particle and particle–boundary forces was taken into consideration. The numerical simulation results successfully predicted the cyclone performance at the designed conditions, which showed the best experimental data trend. These data are useful in future studies to modify the cyclone design and optimize bio-systems' operating conditions for separating the macroscopic particulate matter.
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页码:955 / 971
页数:16
相关论文
共 190 条
[1]  
Pariset E(2018)Separation of biological particles in a modular platform of cascaded deterministic lateral displacement modules Sci Rep 8 1-10
[2]  
Parent C(2020)Process simulation of chemical looping combustion using ASPEN plus for a mixture of biomass and coal with various oxygen carriers Energy 195 116955-77
[3]  
Fouillet Y(2015)A CFD study of the effects of feed diameter on the pressure drop in a cyclone separator Int J Food Eng 11 71-1580
[4]  
Zhou L(1978)The reduction of pressure drop due to dust loading in a conventional cyclone Chem Eng Sci 33 1573-180
[5]  
Deshpande K(2006)Effects of flow parameters and inlet geometry on cyclone efficiency Chinese J Process Eng 6 178-1968
[6]  
Zhang X(2011)The effect of cyclone inlet dimensions on the flow pattern and performance Appl Math Model 35 1952-12
[7]  
Agarwal RK(2005)The influence of temperature and inlet velocity on cyclone pressure drop: a CFD study Chem Eng Process 44 7-2702
[8]  
Rezvanivand Fanayi A(2019)CFD-DEM simulation and optimization of gas-cyclone performance with realistic macroscopic particulate matter Adv Powder Technol 30 2686-18
[9]  
Nikbakht AM(2002)Performance characteristics of cyclones in cotton–gin dust removal CIGR J Sci Res Dev IV 1-111
[10]  
Yuu S(2016)Analysis of cyclone collection efficiency Termotehnica 1 108-134