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Spectral variation of high power microwave pulse propagating in a self-generated plasmaA systematic study to understand the spectral variation of a high power microwave pulse propagating in a self-generated plasma is carried out. It includes the theoretical formulation, experimental demonstration, and computer simulations and computer experiments. The experiment of pulse propagation is conducted in a vacuum chamber filled with dry air (approximately 0.2 torr); the chamber is made of a 2 ft. cube of Plexiglas. A rectangular microwave pulse (1 microsec pulse width and 3.27 GHz carrier frequency) is fed into the cube through an S band microwave horn placed at one side of the chamber. A second S-band horn placed at the opposite side of the chamber is used to receive the transmitted pulse. The spectra of the incident pulse and transmitted pulse are then compared. As the power of the incident pulse is only slightly (less than 15%) above the breakdown threshold power of the background air, the peak of the spectrum of the transmitted pulse is upshifted from the carrier frequency 3.27 GHz of the incident pulse. However, as the power of the incident pulse exceeds the breakdown threshold power of the background air by 30%, a different phenomenon appears. The spectrum of the transmitted pulse begins to have two peaks. One is upshifted and the other one downshifted from the single peak location of the incident pulse. The amount of frequency downshift is comparable to that of the upshifted frequency. A theoretical model describing the experiment of pulse propagation in a self-generated plasma is developed. There are excellent agreements between the experimental results and computer simulations based on this theoretical model, which is also used to further carry out computer experiments identifying the role of plasma introduced wave loss on the result of frequency downshift phenomenon.
Document ID
19960003872
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Ren, A.
(Polytechnic Univ. Farmingdale, NY, United States)
Kuo, S. P.
(Polytechnic Univ. Farmingdale, NY, United States)
Kossey, Paul
(Phillips Lab. Hanscom AFB, MA., United States)
Date Acquired
September 6, 2013
Publication Date
March 1, 1995
Publication Information
Publication: AGARD, High Power Microwaves (HPM), Volume 1
Subject Category
Communications And Radar
Accession Number
96N13882
Funding Number(s)
CONTRACT_GRANT: NAG5-1051
Distribution Limits
Public
Copyright
Other
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