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Electrostatic beneficiation of fly ash in a free-falling system

Electrostatic beneficiation of fly ash in a free-falling system
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摘要 A systematic study of fly ash electrostatic beneficiation in a free-falling separation system was carried out to provide fundamental understanding of the separation efficiency for the design of a suitable process for industrial applications. The parameters investigated included feeding position, electric field strength, particle size and moisture content. Particles larger than 105 μm presented the best separation efficiency among four different size fractions, whereas particles smaller than 44μm showed minimal separation. However, sonication treatments helped separation by liberating more carbon from ash particles, although particle sizes were reduced as well. Experiments also showed that exposure to moisture significantly altered charging behavior of fly ash and its subsequent separation due to more free mobile ion-induced charge exchanges. The optimal feeding position was found to be slightly on the side of the negative electrode, leading to a 30% reduction in loss-on-ignition (LOI) and a 45% recovery in a single pass. A simplified mechanical model based on trajectory analysis for charged particles in an electrical field was in reasonable agreement with experimental results. A systematic study of fly ash electrostatic beneficiation in a free-falling separation system was carried out to provide fundamental understanding of the separation efficiency for the design of a suitable process for industrial applications. The parameters investigated included feeding position, electric field strength, particle size and moisture content. Particles larger than 105 μm presented the best separation efficiency among four different size fractions, whereas particles smaller than 44μm showed minimal separation. However, sonication treatments helped separation by liberating more carbon from ash particles, although particle sizes were reduced as well. Experiments also showed that exposure to moisture significantly altered charging behavior of fly ash and its subsequent separation due to more free mobile ion-induced charge exchanges. The optimal feeding position was found to be slightly on the side of the negative electrode, leading to a 30% reduction in loss-on-ignition (LOI) and a 45% recovery in a single pass. A simplified mechanical model based on trajectory analysis for charged particles in an electrical field was in reasonable agreement with experimental results.
出处 《Particuology》 SCIE EI CAS CSCD 2012年第2期154-160,共7页 颗粒学报(英文版)
基金 Financial support from Sonoro Energy Ltd. the Natural Sciences and Engineering Research Council (NSERC) of Canada isgreatly appreciated
关键词 Fly ashElectrostatic separationLoss-on-ignitionBi-polar chargingVibratory feeder Fly ashElectrostatic separationLoss-on-ignitionBi-polar chargingVibratory feeder
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参考文献11

  • 1Baltrus, J. P., Diehl, J. R., Soong, Y., & Sands, W. (2002). Triboelectrostatic separationof fly ash and charge reversal. Fuel, 81, 757–762.
  • 2Cangialosi, F., Notarnicola, M., Liberti, L., Caramuscio, P., Belz, G., Gurupira, T. Z., et al.(2006). Significance of surface moisture removal on triboelectrostatic benefici-ation of fly ash. Fuel, 85, 2286–2293.
  • 3Cangialosi, F., Notarnicola, M., Liberti, L., & Stencel, J. M. (2008). The effects ofparticle concentration and charge exchange on fly ash beneficiation with pneu-matic triboelectrostatic separation. Separation & Purification Technology, 62,240–248.
  • 4Clift, R., Grace, J. R., & Weber, M. E. (1978). Bubbles, drops and particles. New York:Academic Press.
  • 5Gupta, R., Gidaspow, D., & Wasan, D. T. (1993). Electrostatic separation of powdermixtures based on the work functions of its constituents. Powder Technology, 75,79–87.
  • 6Nomura, T., Satoh, T., & Masuda, H. (2003). The environment humidity effect on thetribo-charge of powder. Power Technology, 135, 43–49.
  • 7Kim, J.-K., & Lee, H.-D. (2009). Design variables of pilot scale electrostatic separatorfor removing unburnt carbon from coal fly ash. Journal of Chemical Engineeringof Japan, 42, 471–477.
  • 8Kim, J.-K., & Kim, S.-C. (2001). Tribo-electrostatic beneficiation of fly ash for ashutilization. Korean Journal of Chemical Engineering, 18, 531–538.
  • 9Soong, Y., Schoffstall, M. R., & Link, T. A. (2001). Triboelectrostatic beneficiation offly ash. Fuel, 80, 879–884.
  • 10Wei, J., & Realff, M. J. (2003). Design and optimization of free-fall electrostatic sep-arators for plastic recycling. AIChE Journal, 49, 3138–3149.

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