The increased popularity of high power microwave systems and the various sources to drive them is the motivation behind the work to be presented. A stand-alone, self-contained explosively driven high power microwave pulsed power system has been designed, built, and tested at Texas Tech University's Center for Pulsed Power and Power Electronics. The system integrates four different sub-units that are composed of a battery driven prime power source utilizing capacitive energy storage, a dual stage helical flux compression generator as the main energy amplification device, an integrated power conditioning system with inductive energy storage including a fast opening electro-explosive switch, and a triode reflex geometry virtual cathode oscillator as the microwave radiating source. This system has displayed a measured electrical source power level of over 5 GW and peak radiated microwaves of about 200 MW. It is contained within a 15 cm diameter housing and measures 2 m in length, giving a housing volume of slightly less than 39 l. The system and its sub-components have been extensively studied, both as integrated and individual units, to further expand on components behavior and operation physics. This report will serve as a detailed design overview of each of the four subcomponents and provide detailed analysis of the overall system performance and benchmarks.
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February 2012
Research Article|
February 06 2012
An explosively driven high-power microwave pulsed power system Available to Purchase
M. A. Elsayed;
M. A. Elsayed
1Center for Pulsed Power and Power Electronics, Departments of Electrical and Computer Engineering and Physics,
Texas Tech University
, Lubbock, Texas 79409, USA
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A. A. Neuber;
A. A. Neuber
1Center for Pulsed Power and Power Electronics, Departments of Electrical and Computer Engineering and Physics,
Texas Tech University
, Lubbock, Texas 79409, USA
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J. C. Dickens;
J. C. Dickens
1Center for Pulsed Power and Power Electronics, Departments of Electrical and Computer Engineering and Physics,
Texas Tech University
, Lubbock, Texas 79409, USA
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J. W. Walter;
J. W. Walter
1Center for Pulsed Power and Power Electronics, Departments of Electrical and Computer Engineering and Physics,
Texas Tech University
, Lubbock, Texas 79409, USA
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M. Kristiansen;
M. Kristiansen
1Center for Pulsed Power and Power Electronics, Departments of Electrical and Computer Engineering and Physics,
Texas Tech University
, Lubbock, Texas 79409, USA
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L. L. Altgilbers
L. L. Altgilbers
2U.S. Army,
SMDC
, Huntsville, Alabama 35808, USA
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M. A. Elsayed
1
A. A. Neuber
1
J. C. Dickens
1
J. W. Walter
1
M. Kristiansen
1
L. L. Altgilbers
2
1Center for Pulsed Power and Power Electronics, Departments of Electrical and Computer Engineering and Physics,
Texas Tech University
, Lubbock, Texas 79409, USA
2U.S. Army,
SMDC
, Huntsville, Alabama 35808, USA
Rev. Sci. Instrum. 83, 024705 (2012)
Article history
Received:
October 20 2011
Accepted:
January 13 2012
Citation
M. A. Elsayed, A. A. Neuber, J. C. Dickens, J. W. Walter, M. Kristiansen, L. L. Altgilbers; An explosively driven high-power microwave pulsed power system. Rev. Sci. Instrum. 1 February 2012; 83 (2): 024705. https://doi.org/10.1063/1.3681443
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