Cavitation performance of multistage slurry pump in deep-sea mining

Liquid–gas and liquid–solid phase relationships are established in this study using the theories of cavitation nucleation and solid–liquid two-phase flow, respectively. The relationship between gas and solid phases is then derived, and the effect of solid phase parameter characteristics on the cavit...

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Main Authors: Hai-Liang Xu, Wei Chen, Cong Xu
Format: Article
Language:English
Published: AIP Publishing LLC 2019-10-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.5125800
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spelling doaj-0ae420003b75494d98f411e9d3c134a32020-11-24T21:42:06ZengAIP Publishing LLCAIP Advances2158-32262019-10-01910105024105024-1710.1063/1.5125800072910ADVCavitation performance of multistage slurry pump in deep-sea miningHai-Liang Xu0Wei Chen1Cong Xu2School of Mechanical and Electrical Engineering, Central South University, Changsha, Hunan 410083, ChinaSchool of Mechanical and Electrical Engineering, Central South University, Changsha, Hunan 410083, ChinaSchool of Mechanical and Electrical Engineering, Central South University, Changsha, Hunan 410083, ChinaLiquid–gas and liquid–solid phase relationships are established in this study using the theories of cavitation nucleation and solid–liquid two-phase flow, respectively. The relationship between gas and solid phases is then derived, and the effect of solid phase parameter characteristics on the cavitation characteristics of the slurry-conveying slurry in the pump is analyzed. The influence law of particle concentration and speed on the airing performance of two-stage slurry pumps is studied on the basis of computational fluid mechanics. Results show that the cavitation phenomenon reduces the overall pressure of the flow field of deep-sea mining slurry pump. The lowest pressure area is the area of airing development at the entrance of the first-stage impeller blade. The cavitation of the mineral pulp pump becomes evident, and air bubbles rapidly spread over the outlet as the solid phrase particle grows in size. Moreover, solid phase concentration heightens the cavitation of the slurry pump. The cavitation in the pump gradually intensifies as the speed of the slurry pump increases, and a large area of air bubbles sharply forms and disturbs the flow field of the pump when the speed reaches 2000 r/min. In addition, the vortex increases, and the jet phenomenon becomes serious. A comprehensive analysis of the cavitation characteristics of the slurry pump is obtained at the following speed, solid phase volume concentration, and solid phase particle size: n = 1450 r/min, C = 5.3% and d = 20 mm, respectively.http://dx.doi.org/10.1063/1.5125800
collection DOAJ
language English
format Article
sources DOAJ
author Hai-Liang Xu
Wei Chen
Cong Xu
spellingShingle Hai-Liang Xu
Wei Chen
Cong Xu
Cavitation performance of multistage slurry pump in deep-sea mining
AIP Advances
author_facet Hai-Liang Xu
Wei Chen
Cong Xu
author_sort Hai-Liang Xu
title Cavitation performance of multistage slurry pump in deep-sea mining
title_short Cavitation performance of multistage slurry pump in deep-sea mining
title_full Cavitation performance of multistage slurry pump in deep-sea mining
title_fullStr Cavitation performance of multistage slurry pump in deep-sea mining
title_full_unstemmed Cavitation performance of multistage slurry pump in deep-sea mining
title_sort cavitation performance of multistage slurry pump in deep-sea mining
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2019-10-01
description Liquid–gas and liquid–solid phase relationships are established in this study using the theories of cavitation nucleation and solid–liquid two-phase flow, respectively. The relationship between gas and solid phases is then derived, and the effect of solid phase parameter characteristics on the cavitation characteristics of the slurry-conveying slurry in the pump is analyzed. The influence law of particle concentration and speed on the airing performance of two-stage slurry pumps is studied on the basis of computational fluid mechanics. Results show that the cavitation phenomenon reduces the overall pressure of the flow field of deep-sea mining slurry pump. The lowest pressure area is the area of airing development at the entrance of the first-stage impeller blade. The cavitation of the mineral pulp pump becomes evident, and air bubbles rapidly spread over the outlet as the solid phrase particle grows in size. Moreover, solid phase concentration heightens the cavitation of the slurry pump. The cavitation in the pump gradually intensifies as the speed of the slurry pump increases, and a large area of air bubbles sharply forms and disturbs the flow field of the pump when the speed reaches 2000 r/min. In addition, the vortex increases, and the jet phenomenon becomes serious. A comprehensive analysis of the cavitation characteristics of the slurry pump is obtained at the following speed, solid phase volume concentration, and solid phase particle size: n = 1450 r/min, C = 5.3% and d = 20 mm, respectively.
url http://dx.doi.org/10.1063/1.5125800
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