Author: Rivetta, C.H.
Paper Title Page
MOPAB24 Identification of Intra-bunch Transverse Dynamics for Feedback Control Purposes at CERN Super Proton Synchrotron 79
 
  • O. Turgut, J.D. Fox, C.H. Rivetta
    SLAC, Menlo Park, California, USA
  • W. Höfle
    CERN, Geneva, Switzerland
  • S.M. Rock
    Stanford University, Stanford, California, USA
 
  Funding: Work supported by the U.S. Department of Energy under contract DE-AC02-76SF00515 and the US LHC Accelerator Research Program (LARP).
We pre­sent meth­ods for pa­ra­me­ter es­ti­ma­tion of in­tra-bunch trans­verse beam dy­nam­ics. The dy­nam­ics is rep­re­sented via re­duced order lin­ear mod­els. These mod­els are use­ful in beam mon­i­tor­ing and in the de­sign of feed­back con­trollers to sta­bi­lize in­tra-bunch trans­verse in­sta­bil­i­ties. The ef­fort is mo­ti­vated by the plans to in­crease cur­rents in the Super Pro­ton Syn­chro­tron as part of the HL-LHC up­grade where feed­back meth­ods could con­trol in­sta­bil­i­ties and allow greater free­dom in ma­chine lat­tice pa­ra­me­ters. Iden­ti­fi­ca­tion al­go­rithms use sub­space meth­ods to com­pute a dis­crete multi-in­put multi-out­put (MIMO) rep­re­sen­ta­tion of the non­lin­ear dy­nam­ics. We use macro par­ti­cle sim­u­la­tion data (CMAD and HEAD­TAIL) and SPS ma­chine mea­sure­ments as the source of dy­nam­ics in­for­ma­tion for the iden­ti­fi­ca­tion of beam dy­nam­ics. Re­duced mod­els cap­ture the es­sen­tial dy­nam­ics of the beam mo­tion or in­sta­bil­ity at a par­tic­u­lar op­er­at­ing point, and can then be used an­a­lyt­i­cally to de­sign op­ti­mal feed­back con­trollers. The ro­bust­ness of the model pa­ra­me­ters against noise and ex­ter­nal ex­ci­ta­tion sig­nals is stud­ied, as is the ef­fect of the MIMO model order on the ac­cu­racy of the iden­ti­fi­ca­tion al­go­rithms.
 
 
THO3AB04 Modeling and Feedback Design Techniques for Controlling Intra-bunch Instabilities at CERN SPS Ring 399
 
  • C.H. Rivetta, J.D. Fox, O. Turgut
    SLAC, Menlo Park, California, USA
  • W. Höfle, K.S.B. Li
    CERN, Geneva, Switzerland
 
  Funding: Work supported by the U.S. Department of Energy under contract # DE-AC02-76SF00515 and the US LHC Accelerator Research Program (LARP).
The feed­back con­trol of in­tra-bunch in­sta­bil­i­ties dri­ven by elec­tron-clouds or strong head-tail cou­pling (trans­verse mode cou­pled in­sta­bil­i­ties –TMCI) re­quires band­width suf­fi­cient to sense the ver­ti­cal po­si­tion and apply mul­ti­ple cor­rec­tions within a nanosec­ond-scale bunch. These re­quire­ments im­pose chal­lenges and lim­its in the de­sign and im­ple­men­ta­tion of the feed­back sys­tem. This paper pre­sents model-based de­sign tech­niques for feed­back sys­tems to ad­dress the sta­bi­liza­tion of the trans­verse bunch dy­nam­ics. These tech­niques in­clude in the de­sign the ef­fect of noise and sig­nals per­turb­ing the bunch mo­tion. They also in­clude re­al­is­tic lim­i­ta­tions such as band­width, non­lin­ear­i­ties in the hard­ware and max­i­mum power de­liv­er­able. Ro­bust­ness of the sys­tem is eval­u­ated as a func­tion of pa­ra­me­ter vari­a­tions of the bunch.
 
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