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Mardor, I.

Paper Title Page
WE102 The Status of the SARAF Linac Project 679
 
  • L. Weissman, D. Berkovits, I. Eliyahu, I. Gertz, A. Grin, S. Halfon, G. Lempert, I. Mardor, A. Nagler, A. Perry, J. Rodnizki
    Soreq NRC, Yavne
  • A. Bechtold
    NTG Neue Technologien GmbH & Co KG, Gelnhausen
  • K. Dunkel, M. Pekeler, C. Piel
    RI Research Instruments GmbH, Bergisch Gladbach
 
 

Phase I of the Soreq Applied Research Accelerator Facility, SARAF, has been installed and is currently being commissioned at Soreq NRC [1]. According to the Phase I design, SARAF should yield 2 mA proton and deuteron beams at energies up to 4 and 5 MeV, respectively. The status of the main Phase I components is reported. We further present beam commissioning results, which include acceleration of a 1 mA CW proton beam up to 3 MeV. Further improvements in the facility in order to achieve the desired performance are discussed.

 

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Slides

 
THP091 Simulations of Ion Beam Loss in RF Linacs with Emphasis on Tails of Particle Distributions 956
 
  • D. Berkovits, B. Bazak, G. Feinberg, I. Mardor, J. Rodnizki, A. Shor, Y. Yanay
    Soreq NRC, Yavne
 
 

Design of ion linacs with ion currents of several milli-amps necessitates detailed simulations of beam loss. At high intensities, even a small amount of beam loss can result in significant radio-activation of the linac components. Particle loss can result from longitudinal tails created in the bunching and pre-accelerating process, whereas strong transverse focusing and collimation limit the development of a transverse tail. In modern RF ion linacs, bunching and pre-acceleration take place in a radio frequency quadrupole (RFQ). We present a new approach for beam loss calculations that places emphasis on the tails of the particle distributions. This scheme is used for simulating the SARAF proton/deuteron linac, a 176 MHz complex designed to operate in CW mode at 4 mA beam current. We describe implementation of a RFQ accelerating element in the GPT 3D simulation code. We discuss our scheme for highlighting the tails of the particle distributions generated by the RFQ. These distributions are used as input to simulations of the RF superconducting linac, where subsequent particle loss is calculated. This technique allows us to increase beam loss statistics by a significant factor.