Phys. Rev. ST Accel. Beams 8, 042002 (2005) [19 pages]

High-power multimode X-band rf pulse compression system for future linear colliders

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Sami G. Tantawi, Christopher D. Nantista, Valery A. Dolgashev, Chris Pearson, Janice Nelson, Keith Jobe, Jose Chan, Karen Fant, and Josef Frisch
Stanford Linear Accelerator Center, Menlo Park, California 94025, USA

Dennis Atkinson
Lawrence Livermore National Laboratory, Livermore, California 94550, USA

Received 2 November 2004; published 7 April 2005

We present a multimode X-band rf pulse compression system suitable for a TeV-scale electron-positron linear collider such as the Next Linear Collider (NLC). The NLC main linac operating frequency is 11.424 GHz. A single NLC rf unit is required to produce 400 ns pulses with 475 MW of peak power. Each rf unit should power approximately 5 m of accelerator structures. The rf unit design consists of two 75 MW klystrons and a dual-moded resonant-delay-line pulse compression system that produces a flat output pulse. The pulse compression system components are all overmoded, and most components are designed to operate with two modes. This approach allows high-power-handling capability while maintaining a compact, inexpensive system. We detail the design of this system and present experimental cold test results. We describe the design and performance of various components. The high-power testing of the system is verified using four 50 MW solenoid-focused klystrons run off a common 400 kV solid-state modulator. The system has produced 400 ns rf pulses of greater than 500 MW. We present the layout of our system, which includes a dual-moded transmission waveguide system and a dual-moded resonant line (SLED-II) pulse compression system. We also present data on the processing and operation of this system, which has set high-power records in coherent and phase controlled pulsed rf.


©2005 The American Physical Society

URL: http://link.aps.org/doi/10.1103/PhysRevSTAB.8.042002
DOI: 10.1103/PhysRevSTAB.8.042002
PACS: 84.40.Az

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