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Tantawi, S.G.; Ruth, R.D.; Vlieks, A.E.
Stanford Univ., Stanford Linear Accelerator Center, CA (United States). Funding organisation: USDOE Office of Energy Research, Washington, DC (United States)1996
Stanford Univ., Stanford Linear Accelerator Center, CA (United States). Funding organisation: USDOE Office of Energy Research, Washington, DC (United States)1996
AbstractAbstract
[en] The authors present the design and a proof of principle experimental results of an optically controlled high power rf pulse compression system. The design should, in principle, handle few hundreds of Megawatts of power at X-band. The system is based on the switched resonant delay line theory. It employs resonant delay lines as a means of storing rf energy. The coupling to the lines is optimized for maximum energy storage during the charging phase. To discharge the lines, a high power microwave switch increases the coupling to the lines just before the start of the output pulse. The high power microwave switch, required for this system, is realized using optical excitation of an electron-hole plasma layer on the surface of a pure silicon wafer. The switch is designed to operate in the TE01 mode in a circular waveguide to avoid the edge effects present at the interface between the silicon wafer and the supporting waveguide; thus, enhancing its power handling capability
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Nov 1996; [50 p.]; 7. workshop on advanced accelerator concepts; Lake Tahoe, CA (United States); 12-18 Oct 1996; CONF-9610210--; CONTRACT AC03-76SF00515; ALSO AVAILABLE FROM OSTI AS DE98059097; NTIS; US GOVT. PRINTING OFFICE DEP
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