Effects of artificial impeller blade wear on bubble–particle interactions using CFD (k–ε and LES), PIV, and 3D printing

  • Gomez-Flores, Allan
  • Heyes, Graeme W.
  • Ilyas, Sadia
  • Kim, Hyunjung
Citations

WEB OF SCIENCE

22
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SCOPUS

24

초록

Wear reduces velocity and turbulence by reducing the volume of impeller blades; yet there is a lack of knowledge on flotation cells. Additionally, there is a lack of knowledge in the literature regarding the effect of blade wear on bubble–particle interactions. Hence, computational fluid dynamics simulations investigated artificial impeller blade wear of a laboratory–scale Denver cell. Simulations of chalcopyrite flotation showed that blade wear increased floatability of 10 μm particles by 1.4 %, but decreased that of 180 μm particles by 3.0 %. Accordingly, it is proposed that curved surfaces due to wear increased ε (volume–averaged ε [m2/s3]: no–wear 20.5 and wear 25.8), increasing collision of fine particles and detachment of coarser particles. These were supported by results from large eddy simulation and particle image velocimetry measurements using three–dimensional (3D) printed impellers. Finally, experimental results from flotation experiments using 3D printed impellers and 250–300 μm methylated quartz confirmed a floatability decrease (2.1 %–3.8 %) due to wear.

키워드

Computational fluid dynamicsParticle image velocimetry3D printingFroth flotationImpeller blade wearEROSION WEARNATURAL FLOTABILITYFLOTATION MACHINECENTRIFUGAL PUMPSLURRY EROSIONFLOW PATTERNSIMULATIONRATESSIZEATTACHMENT
제목
Effects of artificial impeller blade wear on bubble–particle interactions using CFD (k–ε and LES), PIV, and 3D printing
저자
Gomez-Flores, AllanHeyes, Graeme W.Ilyas, SadiaKim, Hyunjung
DOI
10.1016/j.mineng.2022.107766
발행일
2022-08
유형
Article
저널명
Minerals Engineering
186
페이지
1 ~ 13