Effects of ballasting Agent (Microsand) on Physical Floc Characteristics

세사 투입에 따라 형성된 플럭의 물리적 특성

  • 류재나 (중앙대학교 건설환경공학과) ;
  • 임윤대 (중앙대학교 건설환경공학과) ;
  • 오재일 (중앙대학교 건설환경공학과)
  • Received : 2010.08.06
  • Accepted : 2010.09.10
  • Published : 2010.10.15

Abstract

Chemical coagulation destabilizes colloidal particles so that particles grow to larger flocs. Solid particles are then removed by solid-liquid separation after typical precipitation. Rapid precipitation enhances the separation by reducing the precipitation time with larger and denser particles. Conventionally, polyelectolyte compounds (polymers) function as a flocculant aid by introducing a interparticle binding, which increases the particle size and density. And more recent ballasted flocculation adds a ballasting agent (microsand) to form denser particles with its high-density(sp gr=2.65). The current research was to evaluate the manner in which ballasted flocs are formed under different injection timings of microsand and to recognize the effects on floc formation. $FeCl_3$ as a coagulant, anionic polymer for a flocculation aid and microsand were used for the floc formation. Floc size (diameter) was widely ranged with the highest mean value when microsand was injected between $FeCl_3$ and polymer. Mean floc density was larger when the floc formed smaller. Settling velocity increased with larger floc size, whilst not significantly affected by the timing of microsand injection. The additional slow mixing on floc formation increased floc size to some extent.

Keywords

References

  1. Allen, T. (1997) Particle Size Measurement, Volume 1. Powder Sampling and Particle Size Measurement 5th edn., Champman & Hall.
  2. Cailleavx, C., Pujol, E., Dianovs, F. and de Drovton, J. (1992) Study of Weighted Flocculation in View of a New Type of Clarifier, Aqua Vol. 41, pp. 18-27.
  3. Chakraborti. R.K., Atkinson. J.F. and van Benschoten, J.E. (2000) Characterization of Alum Floc by Image Analysis. Environmental Science & Technology, Vol. 34. pp. 3969-3976. https://doi.org/10.1021/es990818o
  4. Ding. Y., Dresnack. R. and Chan, P.C. (1999) Assessment of high-rate sedimentation processes: micorcarrier weighted coagulation jar-test, US Environmental Protection Agency.
  5. Gebbie. P. (2005) A Dummy's Guide 10 Coagulants. 68th Annual Water Industry Engineers and Operators' Conference, Schweppers Centre-Bendigo, 7-8 September, 2005.
  6. Gregory, J. (1998) The role of floc density in solid-liquid separation, Filtration & Separation, Vol. 35, pp. 367-371. https://doi.org/10.1016/S0015-1882(97)87417-4
  7. Javis, P., Jefferson. B. and Parsons. SA (2005) A Review of Floc Strength and Breakage, Water Research Vol. 39, pp. 3121-3137. https://doi.org/10.1016/j.watres.2005.05.022
  8. Khelifa, A. and Hill, P.S. (2006) Models for Effective Density and Settling Velocity of Flocs, Journal of Hydraulic Research Vol. 44. pp. 390-401. https://doi.org/10.1080/00221686.2006.9521690
  9. Metcalf & Eddy, Inc. (2004) Wastewater Engineering, Treatment and Reuse. 4th edn., McGrawHill.
  10. Mirzadeh, A. (1977) Effects of Sodium Bentonite and Ferric Chloride on Activated Sludge Treatment of Wastewater. Journal of Fermentation Technology, Vol. 55. pp. 258.
  11. Nobbs. D., Tang. P. and Raper, J.A. (2002) The Design. Construction and Commissioning of a Low-cost Optical Particle Size Analyser Specifically for Measurement of Settling Velocities and Size of Flocs, Measurement Science and Technology. Vol. 13. pp. 297-302. https://doi.org/10.1088/0957-0233/13/3/310
  12. Novak. J.T., Becker, H, and Zurow, A. (1977) Factors Influencing Activated Sludge Properties. Journal of Environmental Engineering, Vol. 103. pp. 815.
  13. Tambo. N. and Watanabe. Y. (1979) Physical Characteristics of Flocs- I. The Floc Density Function and Aluminum Floc. Water Research Vol. 13, pp. 409-419. https://doi.org/10.1016/0043-1354(79)90033-2
  14. Young, C,J. and Edwards. F.G. (2003) Factors Affecting Ballasted Flocculation Reactions. Water Environment Research Vol. 75. pp. 263-272. https://doi.org/10.2175/106143003X141051