文献翻译-量化流变和细颗粒吸附对粗颗粒浮选的影响.doc
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1、1 英文原文Quantifying rheological and ne particle attachment contributions to coarse particle recovery in otationD. Xu a, I. Ametov a, S.R. Grano b,a Ian Wark Research Institute, The ARC Special Research Centre for Particle and Material Interfaces, University of South Australia, Mawson Lakes, SA 5095, A
2、ustraliab Institute for Mineral and Energy Resources, The University of Adelaide, SA 5005, AustraliaAb s t r a c t This study focused on the otation behaviour of very coarse quartz particles in the presence of ne silica and alumina, both of which were used as pulp viscosity modiers. A decrease in th
3、e contact angle of the coarse quartz particles, caused by the attachment of ne particles was believed to be the principal mech- anism accounting for the noted depression. Only small surface coverage of attached ne particles may dramatically decrease the quartz particle recovery because the otation b
4、ehaviour of the coarse particles was very sensitive to particle hydrophobicity, e.g. less than 5% surface coverage is able to decrease thecontact of particles from 83 to 81 and causes a decrease in recovery from 60% to 20%. The effect ofremoving the ne particles from the pulp, by the process known a
5、s desliming, on the otation behaviour of coarse quartz particles was also investigated. The results showed that desliming is benecial for the recovery of coarse quartz particles. Furthermore, the recovery of coarse quartz particles attached with ne particles can be restored by conducting otation in
6、high viscosity medium where glycerol was used as the viscosity modier.Keywords: Desliming Fine particle Coarse particle Rheology1. IntroductionDetachment of particles from bubbles is one of the key issues responsible for the low recovery of coarse particles. For coarse par- ticles attached to bubble
7、s, the particlebubble aggregates must withstand the various forces which are operational in the otation cell to be successfully transported to the pulp/froth interface. A property-based otation model, developed at the Ian Wark Re- search Institute (The Wark otation model) (Duan et al., 2003; Pyke et
8、 al., 2003) suggests that a key parameter which directly con- trols the stability of a particlebubble aggregate and which quan- ties the mean shear forces acting on the bubbleparticle aggregate is the mean turbulent energy dissipation. A decrease in the mean turbulent energy dissipation throughout a
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