Pico–nano bubble column flotation using static mixer-venturi tube for Pittsburgh No. 8 coal seam

The flotation process is a particle-hydrophobic surface-based separation technique. To improve the essential flotation steps of collision and attachment probabilities, and reduce the step of detachment probabilities between air bubbles and hydrophobic particles, a selectively designed cavitation ven...

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Main Authors: Felicia F. Peng, Xiong Yu
Format: Article
Language:English
Published: Elsevier 2015-05-01
Series:International Journal of Mining Science and Technology
Online Access:http://www.sciencedirect.com/science/article/pii/S2095268615000464
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spelling doaj-ee9bcbbbd7be400ca8043dcd7132ee912020-11-25T00:42:35ZengElsevierInternational Journal of Mining Science and Technology2095-26862015-05-01253347354Pico–nano bubble column flotation using static mixer-venturi tube for Pittsburgh No. 8 coal seamFelicia F. Peng0Xiong Yu1Corresponding author. Tel.: +1 304 2937680.; The Department of Mining Engineering, West Virginia University, Morgantown 26506-6070, USAThe Department of Mining Engineering, West Virginia University, Morgantown 26506-6070, USAThe flotation process is a particle-hydrophobic surface-based separation technique. To improve the essential flotation steps of collision and attachment probabilities, and reduce the step of detachment probabilities between air bubbles and hydrophobic particles, a selectively designed cavitation venturi tube combined with a static mixer can be used to generate very high numbers of pico and nano bubbles in a flotation column. Fully embraced by those high numbers of tiny bubbles, hydrophobic particles readily attract the tiny bubbles to their surfaces. The results of column flotation of Pittsburgh No. 8 seam coal are obtained in a 5.08 cm ID and 162 cm height flotation column equipped with a static mixer and cavitation venturi tube, using kerosene as collector and MIBC as frother. Design of the experimental procedure is combined with a statistical two-stepwise analysis to determine the optimal operating conditions for maximum recovery at a specified grade. The effect of independent variables on the responses has been explained. Combustible material recovery of 85–90% at clean coal product of 10–11% ash is obtained from feed of 29.6% ash, with a much-reduced amount of frother and collector than that used in conventional column flotation. The column flotation process utilizing pico and nano bubbles can also be extended to the lower limit and upper limit of particle size ranges, minus 75 μm and 300–600 μm, respectively, for better recovery. Keywords: Pico–nano bubble generation, Cavitation venturi tube, Fine coal flotation, Statistical analysis methodhttp://www.sciencedirect.com/science/article/pii/S2095268615000464
collection DOAJ
language English
format Article
sources DOAJ
author Felicia F. Peng
Xiong Yu
spellingShingle Felicia F. Peng
Xiong Yu
Pico–nano bubble column flotation using static mixer-venturi tube for Pittsburgh No. 8 coal seam
International Journal of Mining Science and Technology
author_facet Felicia F. Peng
Xiong Yu
author_sort Felicia F. Peng
title Pico–nano bubble column flotation using static mixer-venturi tube for Pittsburgh No. 8 coal seam
title_short Pico–nano bubble column flotation using static mixer-venturi tube for Pittsburgh No. 8 coal seam
title_full Pico–nano bubble column flotation using static mixer-venturi tube for Pittsburgh No. 8 coal seam
title_fullStr Pico–nano bubble column flotation using static mixer-venturi tube for Pittsburgh No. 8 coal seam
title_full_unstemmed Pico–nano bubble column flotation using static mixer-venturi tube for Pittsburgh No. 8 coal seam
title_sort pico–nano bubble column flotation using static mixer-venturi tube for pittsburgh no. 8 coal seam
publisher Elsevier
series International Journal of Mining Science and Technology
issn 2095-2686
publishDate 2015-05-01
description The flotation process is a particle-hydrophobic surface-based separation technique. To improve the essential flotation steps of collision and attachment probabilities, and reduce the step of detachment probabilities between air bubbles and hydrophobic particles, a selectively designed cavitation venturi tube combined with a static mixer can be used to generate very high numbers of pico and nano bubbles in a flotation column. Fully embraced by those high numbers of tiny bubbles, hydrophobic particles readily attract the tiny bubbles to their surfaces. The results of column flotation of Pittsburgh No. 8 seam coal are obtained in a 5.08 cm ID and 162 cm height flotation column equipped with a static mixer and cavitation venturi tube, using kerosene as collector and MIBC as frother. Design of the experimental procedure is combined with a statistical two-stepwise analysis to determine the optimal operating conditions for maximum recovery at a specified grade. The effect of independent variables on the responses has been explained. Combustible material recovery of 85–90% at clean coal product of 10–11% ash is obtained from feed of 29.6% ash, with a much-reduced amount of frother and collector than that used in conventional column flotation. The column flotation process utilizing pico and nano bubbles can also be extended to the lower limit and upper limit of particle size ranges, minus 75 μm and 300–600 μm, respectively, for better recovery. Keywords: Pico–nano bubble generation, Cavitation venturi tube, Fine coal flotation, Statistical analysis method
url http://www.sciencedirect.com/science/article/pii/S2095268615000464
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