High power microwave generation using an active metamaterial powered by an electron beam

Thesis: Ph. D., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering, 2016.

Bibliographic Details
Main Author: Hummelt, Jason Samuel
Other Authors: Richard J. Temkin.
Format: Thesis
Language:eng
Published: Massachusetts Institute of Technology 2017
Subjects:
Online Access:http://hdl.handle.net/1721.1/106771
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author Hummelt, Jason Samuel
author2 Richard J. Temkin.
author_facet Richard J. Temkin.
Hummelt, Jason Samuel
author_sort Hummelt, Jason Samuel
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description Thesis: Ph. D., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering, 2016.
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spelling mit-1721.1/1067712019-04-12T17:40:06Z High power microwave generation using an active metamaterial powered by an electron beam Hummelt, Jason Samuel Richard J. Temkin. Massachusetts Institute of Technology. Department of Nuclear Science and Engineering. Massachusetts Institute of Technology. Department of Nuclear Science and Engineering. Nuclear Science and Engineering. Thesis: Ph. D., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering, 2016. Cataloged from PDF version of thesis. Includes bibliographical references (pages 205-210). This thesis presents the theory, design, and experimental demonstration of coherent microwave generation at 2.4 GHz in a metamaterial loaded waveguide using a 490 keV, 84 A, one microsecond pulse length electron beam that produced more than 5 MW of microwave power. Three different metamaterial structure designs named MTM1, MTM2, and MTM3 were tested with design frequencies of 2.8, 2.4, and 3.7 GHz, respectively. The waveguides were loaded with two metamaterial plates that were machined with complementary split ring resonators with periods ranging from 5 to 10 mm. The metamaterial waveguides supported two distinct modes: a symmetric mode that occurs when the two metamaterial plates were excited in phase, and an antisymmetric mode that occurs when the metamaterial plates were excited out of phase. The electron beam propagated on axis between the metamaterial plates. The output radiation was studied for solenoid magnetic field values in the range 350 to 1600 G and for beam voltages from 350 to 500 kV. The best results were found in a 370 mm long structure using the MTM2 design, where output power levels of up to 5 MW were obtained at 400 G in the antisymmetric mode at a frequency near 2.39 GHz. The frequency tuning vs. magnetic field for operation at a power level exceeding 1 MW was consistent with that predicted by an anomalous Doppler shifted resonance condition, [omega] = [kappa]z[upsilon]z - [Omega]c/[gamma]. At magnetic fields above 750 G, the microwave output switched to the symmetric mode at a frequency near 2.44 GHz, but the power level dropped drastically to below 100 W. In contrast to the antisymmetric mode, the frequency tuning of the symmetric mode was consistent with that predicted by a normal Cherenkov resonance, [omega] = [kappa]z[upsilonl]z. CST PIC simulations predict the observed output frequencies and the switch between modes at 750 G. However, the CST simulations also predict multi-megawatt power levels in both modes, which was observed in the antisymmetric mode, but not the symmetric mode. The discrepancy between the symmetric mode output power of the simulations and experiment Is unexplained. To the authors knowledge, these are the first reported experimental results of high power (> 1 MW) microwave generation from an electron beam interacting with a metamaterial structure. The results are important for the development of new microwave sources and novel devices which utilize active metamaterials by Jason Samuel Hummelt. Ph. D. 2017-01-30T19:17:36Z 2017-01-30T19:17:36Z 2016 2016 Thesis http://hdl.handle.net/1721.1/106771 969903944 eng MIT theses are protected by copyright. They may be viewed, downloaded, or printed from this source but further reproduction or distribution in any format is prohibited without written permission. http://dspace.mit.edu/handle/1721.1/7582 210 pages application/pdf Massachusetts Institute of Technology
spellingShingle Nuclear Science and Engineering.
Hummelt, Jason Samuel
High power microwave generation using an active metamaterial powered by an electron beam
title High power microwave generation using an active metamaterial powered by an electron beam
title_full High power microwave generation using an active metamaterial powered by an electron beam
title_fullStr High power microwave generation using an active metamaterial powered by an electron beam
title_full_unstemmed High power microwave generation using an active metamaterial powered by an electron beam
title_short High power microwave generation using an active metamaterial powered by an electron beam
title_sort high power microwave generation using an active metamaterial powered by an electron beam
topic Nuclear Science and Engineering.
url http://hdl.handle.net/1721.1/106771
work_keys_str_mv AT hummeltjasonsamuel highpowermicrowavegenerationusinganactivemetamaterialpoweredbyanelectronbeam