Influence of Particle Surface Energy and Sphericity on Filtration Performance Based on FLUENT-EDEM Coupling Simulation

Author:

Wu Qing1,Xing Zhenqiang2,Chen Dejun3,Chen Jianwu45,Yang Bin45,Zhong Jianfang1,Huang Hong1,Ma Zhifei1,Huang Shan1ORCID,You Da1,Li Jianlong1ORCID,Wu Daishe1

Affiliation:

1. School of Resources and Environmental Engineering, Nanchang University, Nanchang 330031, China

2. CCTEG Shenyang Research Institute, Shenyang 110141, China

3. Rare Earth Research Institute, Nanchang University, Nanchang 330031, China

4. China Academy of Safety Science and Technology, Beijing 100012, China

5. NHC Key Laboratory for Engineering Control of Dust Hazard, Beijing 100012, China

Abstract

The adhesion of dust particles on the surface of the dust collector tends to cause great resistance to the dust collector and affects the operating efficiency. In order to visualize particles in the filtration process and to grasp the mechanism of particle viscosity and sphericity on filtration performance, a numerical simulation study was conducted to investigate the deposition behavior of particles during filtration, employing FLUENT-EDEM coupling technology. By examining the deposition process, the role of particle characteristics on dust behavior within the entire filtration system was elucidated. The effects of varying particle surface energy and particle sphericity on filtration pressure drop and cake porosity were analyzed. The findings reveal that under the force of the air, particles on the surface of the filter membrane experience compaction, leading to a reduction in the porosity of the formed cake layer. The diminution of porosity serves to impede the air, consequently augmenting the pressure drop across the filtration system and hindering the operational efficacy of the dust collector. As the surface energy of the particles increases, the adhesive forces between particles are intensified, leading to an elevation in the porosity of the cake layer and a subsequent decrease in the pressure drop. When the surface energy of the particles is increased from 0.01 J/m2 to 0.04 J/m2, the porosity experiences a modest increase of only 9.1%, yet the pressure drop is significantly reduced by half, amounting to a decrease of 1594 Pa. Under high particle surface energy, as filtration air velocity increases, particles are compressed, resulting in a decrease in cake porosity and an increase in pressure drop. Concurrently, our findings indicate that as the sphericity of particles increases, their surfaces become increasingly smooth which in turn results in a decreased porosity of the cake layer and, consequently, an elevation in the filtration pressure drop.

Funder

National Natural Science Foundation of China

Basic Research Funds of China Academy of Work Safety

Open Fund Project of NHC Key Laboratory for Engineering Control of Dust Hazard

Cultivating Project for Academic and Technical Leader of Key Discipline of Jiangxi Province

Graduate Student Innovation Special Fund Project of Jiangxi Province

Publisher

MDPI AG

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