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Reversible Axial Segregation in Rotating Granular Media

Published online by Cambridge University Press:  03 September 2012

K. M. Hill
Affiliation:
The University of Minnesota, School of Physics and Astronomy, Minneapolis, MN 55455
L. Yarusso
Affiliation:
The University of Minnesota, School of Physics and Astronomy, Minneapolis, MN 55455
J. Kakalios
Affiliation:
The University of Minnesota, School of Physics and Astronomy, Minneapolis, MN 55455
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Abstract

Binary mixtures of granular media having differing diameters are combined in a horizontal cylinder and rotated like a drum mixer about its long axis. Within a few minutes of rotation at 15 rpm axial segregation occurs and the mixture separates into relatively pure alternating bands of the individual components along the axis of rotation. We describe an experimental system whereby the mixed state can be restored by changing the speed of rotation. The sensitivity of the reversible axial segregation effect to systematic variations of the glass bead diameter is reported. Measurements of the dynamic angle of repose of the mixed and segregated phases support an explanation for the reversible axial segregation effect involving the competition between axial drift and diffusion currents, leading to a diffusion equation with a negative effective diffusion coefficient.

Type
Research Article
Copyright
Copyright © Materials Research Society 1995

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References

1. Cooke, M. H., Stephens, D. J. and Bridgwater, J., Powder Tech. 15, 1 (1976).Google Scholar
2. Fan, L. T. and Chen, Yi-Ming, Powder Tech. 61, 255 (1990).Google Scholar
3. Olsen, James L. and Rippie, Edward G., J. Pharmaceutical Sci. 53, 147 (1964).Google Scholar
4. Oyama, Y., Bull. Inst. Phys. Chem. Res. (Tokyo), Rep. 5, 600 (1939).Google Scholar
5. Donald, M. B. and Roseman, B., British Chem. Eng. 7, 749 (1962); B. Roseman and M. B. Donald, British Chem. Eng. 7, 823 (1962).Google Scholar
6. Bridgwater, J., Powder Tech. 15, 215 (1976).Google Scholar
7. Gupta, S. Das, Khakhar, D. V. and Bhatia, S. K., Powder Tech. 67, 145 (1991); Chemical Eng. Sci. 46, 1513 (1991).Google Scholar
8. Bridgwater, J., Sharpe, N. W. and Stocker, D. C., Trans. Instn. Chem. Engrs. 47, TI114 (1969).Google Scholar
9. Rose, H. E., Trans. Instn. Chem. Engrs. 37, 47 (1959).Google Scholar
10. Rao, S. J., Bhatia, S. K. and Khakhar, D. V., Powder Tech. 67, 153 (1991).Google Scholar
11. Physics of Granular Media, ed. by Bideau, D. and Hansen, A. (North-Holland, Amsterdam, 1993).Google Scholar
12. Disorder and Granular Media, ed. by Bideau, D. and Hansen, A. (North-Holland, Amsterdam, 1993)Google Scholar
13. Granular Matter, An Interdisciplinary Approach, ed. by Mehta, Anita (Springer-Verlag, New York, 1994).Google Scholar
14. Bak, P., Tang, C. and Wiesenfeld, K., Phys. Rev. Lett. 59, 381 (1987); Phys. Rev. A 38, 364 (1988); Chao Tang and Per Bak, Phys., Rev. Lett. 60, 2347 (1988).Google Scholar
15. Jaeger, H. M. and Nagel, Sidney R., Science 255, 1523 (1992).Google Scholar
16. Knight, James B., Jaeger, H. M., and Nagel, Sidney R., Phys. Rev. Lett. 70, 3728 (1993).Google Scholar
17. Zik, O., Levine, Dov, Lipson, S. G., Shtrikman, S., and Stavans, J., Phys. Rev. Lett. 67, 145 (1991).Google Scholar
18. Nakagawa, M., Chem. Eng. Sci. (in press).Google Scholar
19. Hill, K. M. and Kakalios, J., Phys. Rev. E 49, R3610 (1994).Google Scholar
20. Fauve, S., Laroche, C., and Douady, S., in Physics of Granular Media, edited by Bideau, Daniel and Dodds, John (Nova Science, Commack, NY, 1991), p.277.Google Scholar
21. Savage, Stuart B., in Disorder and Granular Media, edited by Bideau, D. and Hansen, A. (North-Holland, Amsterdam, 1993), p.255.Google Scholar
22. Edwards, S. F. and Mehta, Anita, J. Phys. (Paris) 50, 2489 (1989); Anita Mehta and S. F. Edwards, Physica A 157, 1091 (1989); 168, 714 (1990)Google Scholar
23. Rajchenbach, Jean, Phys. Rev. Lett. 65, 2221 (1990).Google Scholar