Particle stabilised thin films

Froth flotation is widely used by the mining industry to concentrate low grade metal ores. It uses the differences in surface properties between particles of the desired mineral and waste material to separate them using a mineralised froth. The properties of this particle stabilised mineralised frot...

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Main Author: Morris, Gareth David Morte
Other Authors: Cilliers, Jan
Published: Imperial College London 2010
Subjects:
622
Online Access:http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.527771
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spelling ndltd-bl.uk-oai-ethos.bl.uk-5277712017-08-30T03:17:24ZParticle stabilised thin filmsMorris, Gareth David MorteCilliers, Jan2010Froth flotation is widely used by the mining industry to concentrate low grade metal ores. It uses the differences in surface properties between particles of the desired mineral and waste material to separate them using a mineralised froth. The properties of this particle stabilised mineralised froth impact on the efficiency of the separation process. Due to its dynamic and unstable nature it is difficult to study and remains relatively poorly understood. A deeper insight into the fundamental froth properties can be gained by using computer modelling techniques. Here a series of models are developed using the Surface Evolver (Brakke 1992). They are used to investigate the effects of particle shape, hydrophobicity and packing arrangement on the critical capillary pressure of thin films. Three dimensional simulations of uniformly spaced spherical particles in the film are compared to existing two dimensional (2D) analytical models. It is shown that 2D models over predict the capillary pressure required to rupture the film. The models are developed further to simulate randomly distributed particles in a periodic film. The results are then used to derive an expression for film stability based on particle packing density and contact angle. The different possible failure modes of double layers of particles are also investigated and the conditions under which they occur identified. A versatile model for simulating non-spherical particles in an interface or film is also derived and used to find the energetically stable orientations of orthorhombic particles at an interface. This information is then used to investigate the effect of particle orientation on the capillary pressure required to rupture the film. It is shown that the combination of contact angle and shape affect the particle orientation. Certain orientations are then shown to reduce the critical capillary pressure of the film by up to 70 %.622Imperial College Londonhttp://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.527771http://hdl.handle.net/10044/1/6206Electronic Thesis or Dissertation
collection NDLTD
sources NDLTD
topic 622
spellingShingle 622
Morris, Gareth David Morte
Particle stabilised thin films
description Froth flotation is widely used by the mining industry to concentrate low grade metal ores. It uses the differences in surface properties between particles of the desired mineral and waste material to separate them using a mineralised froth. The properties of this particle stabilised mineralised froth impact on the efficiency of the separation process. Due to its dynamic and unstable nature it is difficult to study and remains relatively poorly understood. A deeper insight into the fundamental froth properties can be gained by using computer modelling techniques. Here a series of models are developed using the Surface Evolver (Brakke 1992). They are used to investigate the effects of particle shape, hydrophobicity and packing arrangement on the critical capillary pressure of thin films. Three dimensional simulations of uniformly spaced spherical particles in the film are compared to existing two dimensional (2D) analytical models. It is shown that 2D models over predict the capillary pressure required to rupture the film. The models are developed further to simulate randomly distributed particles in a periodic film. The results are then used to derive an expression for film stability based on particle packing density and contact angle. The different possible failure modes of double layers of particles are also investigated and the conditions under which they occur identified. A versatile model for simulating non-spherical particles in an interface or film is also derived and used to find the energetically stable orientations of orthorhombic particles at an interface. This information is then used to investigate the effect of particle orientation on the capillary pressure required to rupture the film. It is shown that the combination of contact angle and shape affect the particle orientation. Certain orientations are then shown to reduce the critical capillary pressure of the film by up to 70 %.
author2 Cilliers, Jan
author_facet Cilliers, Jan
Morris, Gareth David Morte
author Morris, Gareth David Morte
author_sort Morris, Gareth David Morte
title Particle stabilised thin films
title_short Particle stabilised thin films
title_full Particle stabilised thin films
title_fullStr Particle stabilised thin films
title_full_unstemmed Particle stabilised thin films
title_sort particle stabilised thin films
publisher Imperial College London
publishDate 2010
url http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.527771
work_keys_str_mv AT morrisgarethdavidmorte particlestabilisedthinfilms
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