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Original Articles

Effect of Froth Structure and Mobility on Plant Performance

Pages 169-201 | Published online: 06 Apr 2007

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (5)

Hangil Park, Changzhi Bai & Liguang Wang. (2023) A Convolutional Neural Network for Classification of Froth Mobility in an Industrial Flotation Cell. Mineral Processing and Extractive Metallurgy Review 44:3, pages 209-217.
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Chitalu Chipili & Clayton Bhondayi. (2023) Bubble Loading in a Fluidized Column: Effects of Bubble Size, Particle Size, Contact Angle and Particle Density. Mineral Processing and Extractive Metallurgy Review 0:0, pages 1-13.
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Hamid Khoshdast, Ahmad Hassanzadeh, Przemyslaw B. Kowalczuk & Saeed Farrokhpay. (2023) Characterization Techniques of Flotation Frothers - A Review. Mineral Processing and Extractive Metallurgy Review 44:2, pages 77-101.
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C. Bhondayi. (2022) Flotation Froth Phase Bubble Size Measurement. Mineral Processing and Extractive Metallurgy Review 43:2, pages 251-273.
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Wenyao Shao, Jingyun Zhang, Anni Feng, Xueshan Pan & Zongyuan Xiao. (2016) Removal of Ni(II) in aqueous solutions by foam fractionation. Desalination and Water Treatment 57:40, pages 18724-18729.
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Articles from other publishers (14)

Daowei Wang & Qi Liu. (2021) Hydrodynamics of froth flotation and its effects on fine and ultrafine mineral particle flotation: A literature review. Minerals Engineering 173, pages 107220.
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Ritesh Prakash, Subrata Kumar Majumder & Anugrah Singh. (2018) Flotation technique: Its mechanisms and design parameters. Chemical Engineering and Processing - Process Intensification 127, pages 249-270.
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L. Wang, K. Runge & Y. Peng. (2016) The observed effect of flotation operating conditions and particle properties on water recovery at laboratory scale. Minerals Engineering 94, pages 83-93.
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Yanhong Wang, Yongjun Peng, Timothy Nicholson & Rolf Andreas Lauten. (2015) The different effects of bentonite and kaolin on copper flotation. Applied Clay Science 114, pages 48-52.
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L. Wang, Y. Peng, K. Runge & D. Bradshaw. (2015) A review of entrainment: Mechanisms, contributing factors and modelling in flotation. Minerals Engineering 70, pages 77-91.
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Bianca Newcombe, D. Bradshaw & E. Wightman. (2012) Flash flotation… and the plight of the coarse particle. Minerals Engineering 34, pages 1-10.
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Seher Ata. (2012) Phenomena in the froth phase of flotation — A review. International Journal of Mineral Processing 102-103, pages 1-12.
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R.P. King. 2001. Modeling and Simulation of Mineral Processing Systems. Modeling and Simulation of Mineral Processing Systems 289 350 .
Yoshiyuki Bando, Takahiro Kuze, Tatsuya Sugimoto, Keiji Yasuda & Masaaki Nakamura. (2000) Development of bubble column for foam separation. Korean Journal of Chemical Engineering 17:5, pages 597-599.
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O.N. Savassi, D.J. Alexander, J.P. Franzidis & E.V. Manlapig. (1998) An empirical model for entrainment in industrial flotation plants. Minerals Engineering 11:3, pages 243-256.
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D.W. Moolman, J.J. Eksteen, C. Aldrich & J.S.J. van Deventer. (1996) The significance of flotation froth appearance for machine vision control. International Journal of Mineral Processing 48:3-4, pages 135-158.
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D.W. Moolman, C. Aldrich, J.S.J. van Deventer & W.W. Stange. (1995) The classification of froth structures in a copper flotation plant by means of a neural net. International Journal of Mineral Processing 43:3-4, pages 193-208.
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D.W. Moolman, C. Aldrich & J.S.J. Van Deventer. (1995) The monitoring of froth surfaces on industrial flotation plants using connectionist image processing techniques. Minerals Engineering 8:1-2, pages 23-30.
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J. Rubio & J.A. Solari. (1991) Lamellar flotation of a lead-zinc sulphide ore. Minerals Engineering 4:2, pages 133-140.
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