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Deposition Behavior of Latex Particles In Filtration Process Through Glass Packed Column

Published online by Cambridge University Press:  10 February 2011

H. Chinju
Affiliation:
Department of Quantum Engineering and Systems Science, The University of Tokyo
S. Nagasaki
Affiliation:
Department of Quantum Engineering and Systems Science, The University of Tokyo
S. Tanaka
Affiliation:
Department of Quantum Engineering and Systems Science, The University of Tokyo
T. Tanaka
Affiliation:
Department of Environmental Safety Research, Tokai Research Establishment, Japan Atomic Energy Research Institute
H. Ogawa
Affiliation:
Department of Environmental Safety Research, Tokai Research Establishment, Japan Atomic Energy Research Institute
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Abstract

The deposition behavior of colloids from a flowing suspension onto a solid collector surface infiltration process was observed by conducting column experiments with polystyrene latex particlesand glass beads packed columns. From the observed particle breakthrough curves, single collectorefficiencies were calculated. By comparing the single collector efficiency obtained in the columnexperiment with the existing approximate expression, the effects of flow velocity on the depositionbehavior was discussed.

Type
Research Article
Copyright
Copyright © Materials Research Society 1999

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References

REFERENCES

1. Chung, J. Y. and Lee, K. J., Ann. Nuclear Energy 19, 145153 (1992).Google Scholar
2. Nagasaki, S.. Tanaka, S., and Suzuki, A., Progress in Nuclear Energy 32, 141161 ( 1998).Google Scholar
3. Small, H., J. Colloid Interface Sci. 48, 147161 (1974).Google Scholar
4. Nagasaki, S., Tanaka, S., and Suzuki, A., J. Nuclear Sci. Technol. 30, 11361144 (1993).Google Scholar
5. Saltelli, A., Avogadro, A., and Bidoglio, G., Nuclear Technol. 67, 245254 (1984).Google Scholar
6. Hwang, Y., Charnbré, P. L., Lee, W. W.-L., and Pigford, T. H. in Scientific Basis for Nuclear Waste Management X111, edited by Oversby, V. M. and Brown, P. W. (Mater. Rcs. Soc. Proc. 176, Boston, MA, 1989) pp. 599605.Google Scholar
7. McDowell-Boyer, L. M., Hunt, J. R. and Sitar, N., Water Resources Rcs. 13, 19011921 (1986).Google Scholar
8. Elimelech, M., and O'Melia, C. R., Langmuir 6, 11531163 (1990).Google Scholar
9. Deijaguin, B. V. and Landau, L. D., Acta Physicochim. URSS 14, 633662 (1941).Google Scholar
10. Verwey, E. J. W. and Overbeck, J. Th. G., Theory of the Stability of Lyophobic Colloids, Elsevier, Amsterdam (1948).Google Scholar
11. Rodier, E. and Dodds, J., Colloids Surfaces A: Physicochcm. Eng. Aspects 73, 7787 (1993).Google Scholar
12. Paul, A., Chemistry of Glasses, Chapman and Hall, London (1982).Google Scholar
13. Song, L. and Elimelech, M., J. Colloid Interface Sci. 167, 301313 (1994).Google Scholar
14. Johnson, P. R. and Elimelech, M., Langmuir 11, 801812 (1995).Google Scholar
15. Elimelech, M., J. Colloid Interface Sci. 146, 337352 (1991).Google Scholar
16. Spielman, L. A. and Friedlander, S. K., J. Colloid Interface Sci. 46, 2231 (1974).Google Scholar
17. Happel, J., Am. Inst. Chem. Eng. J. 4, 197201 (1958).Google Scholar
18. Levich, V. G., Phsicochenical Hydrodynamics, Prentice-Hall, New Jersey (1962).Google Scholar