Author: Hansen, E.C.
Paper Title Page
TUPAB153 Modeling of Capillary Discharge Plasmas for Wakefield Accelerators and Beam Transport 1740
 
  • N.M. Cook, J.A. Carlsson, S.J. Coleman, A. Diaw, J.P. Edelen
    RadiaSoft LLC, Boulder, Colorado, USA
  • E.C. Hansen, P. Tzeferacos
    Flash Center for Computational Science, Chicago, USA
 
  Funding: This material is based upon work supported by the U.S. Department of Energy, Office of Science, Office of High Energy Physics under Award Number DE-SC0018719.
Next gen­er­a­tion ac­cel­er­a­tors de­mand so­phis­ti­cated beam sources to reach ul­tra-low emit­tances at large ac­cel­er­at­ing gra­di­ents, along with im­proved op­tics to trans­port these beams with­out degra­da­tion. Cap­il­lary dis­charge plas­mas can ad­dress each of these chal­lenges. As sources, cap­il­lar­ies have been shown to in­crease the en­ergy and qual­ity of wake­field ac­cel­er­a­tors, and as ac­tive plasma lenses they pro­vide or­ders-of-mag­ni­tude in­creases in peak mag­netic field. Cap­il­lar­ies are sen­si­tive to en­ergy de­po­si­tion, heat trans­fer, ion­iza­tion dy­nam­ics, and mag­netic field pen­e­tra­tion; there­fore, cap­il­lary de­sign re­quires care­ful mod­el­ing. We pre­sent sim­u­la­tions of cap­il­lary dis­charge plas­mas using FLASH, a pub­licly-avail­able multi-physics code de­vel­oped at the Uni­ver­sity of Chicago. We re­port on the im­ple­men­ta­tion of 2D and 3D mod­els of cap­il­lary plasma den­sity and tem­per­a­ture evo­lu­tion with re­al­is­tic bound­ary and dis­charge con­di­tions. We then demon­strate laser en­ergy de­po­si­tion to model chan­nel for­ma­tion for guid­ing in­tense laser pulses. Lastly, we ex­am­ine ac­tive cap­il­lary plas­mas with vary­ing fill species and com­pare our sim­u­la­tions against ex­per­i­men­tal stud­ies.
 
DOI • reference for this paper ※ https://doi.org/10.18429/JACoW-IPAC2021-TUPAB153  
About • paper received ※ 24 May 2021       paper accepted ※ 29 July 2021       issue date ※ 30 August 2021  
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