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Current sheath studies in a co-axial plasma focus gun

Published online by Cambridge University Press:  13 March 2009

S. P. Chow
Affiliation:
Physics Department, University of Malaya, Kuala Lumpur, Malaysia
S. Lee
Affiliation:
Physics Department, University of Malaya, Kuala Lumpur, Malaysia
B. C. Tan
Affiliation:
Physics Department, University of Malaya, Kuala Lumpur, Malaysia

Abstract

A co-axial plasma focus device is operated in deuterium gas at ambient pressures from 0·2 to 0·7 mm Hg and condenser bank voltages from 10 to 22 kV. Magnetic probing reveals an axisymmetric parabolic current sheath which propagates down the co-axial tube (steady propagation region) and collapses off the end of the co-axial gun forming a dense plasma focus. The state of the plasma just before the focusing action is very much dependent on the velocity in the steady propagation region. This velocity is experimentally studied and compared with a snow- plough theory. The collapsing phase of the current sheath is studied using high speed framing photography and current and voltage measurements. The results indicate a focus of length 1·5 cm and radius less than 1·7 mm.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1972

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References

REFERENCES

Dattner, A. & Eninger, J. 1964 Phys. Fluids suppl. 7, S41.CrossRefGoogle Scholar
Lee, S., Thong, S. P. & Tan, B. C. 1971 a High current discharge module system. University of Malaya, Plasma Phys. Lab. Rep. 2/71.Google Scholar
Lee, S., Chen, Y. H., Chow, S. P., Tan, B. C., Teh, H. H. & Thong, S. P. 1971 b High- speed photography of a plasma focus. Int. J. Electronics. (To be published.)Google Scholar
Mather, J. W. 1964 Phys. Fluids Suppl. 7, S28,CrossRefGoogle Scholar
Mather, J. W. 1965 Phys. Fluids Suppl. 8, S 366.CrossRefGoogle Scholar
Mather, J. W. 1968 Phys. Fluids, 11, 611.CrossRefGoogle Scholar
Patou, A., Simonnet, A. & Watteau, J. P. 1969 Le Journal de Physique, 29, 973.CrossRefGoogle Scholar
Peacock, N. J., Wilcock, P. S., Speed, R. J. & Morgan, P. D. 1969 Plasma Physics and controlled Nuclear Fusion Research, vol. 2, p. 51. Vienna: IAEA.Google Scholar
Roberts, K. V. & Potter, D. E. 1970 Methods in Computational Physics (ed. Alder, B., Fernbach, S. and Rotenburg, M.), vol. 9, p. 339. Academic.Google Scholar