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Pei, S.

Paper Title Page
TU1GRI01 Road to a Plasma Wakefield Accelerator Based Linear Collider 646
 
  • M.J. Hogan, I. Blumenfeld, N.A. Kirby, S. Pei, T.O. Raubenheimer, A. Seryi, P. Tenenbaum
    SLAC, Menlo Park, California
  • C. Huang, C. Joshi, W. Lu, W.B. Mori
    UCLA, Los Angeles, California
  • T.C. Katsouleas
    Duke University, Durham, North Carolina
  • P. Muggli
    USC, Los Angeles, California
 
 

Funding: Work supported in part by the U.S. Department of Energy under contract number DE-AC02-76SF00515.


Recent progress in generating gradients in the 10's of GV/m range with beam driven plasmas has renewed interest in developing a linear collider based on this technology. This talk will explore possible configurations of such a machine, discuss the key demonstrations and the facilities needed to advance this effort and highlight possible alternative uses of this technology.

 

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Slides

 
WE5PFP096 Damping Effect Studies for X-Band Normal Conducting High Gradient Standing Wave Structures 2237
 
  • S. Pei, V.A. Dolgashev, Z. Li, S.G. Tantawi, J.W. Wang
    SLAC, Menlo Park, California
 
 

Funding: Work supported by the DOE under contract DE-AC02-76SF00515.


The Multi-TeV colliders should have the capability to accelerate low emittance beam with high rf efficiency, X-band normal conducting high gradient accelerating structure is one of the promising candidate. However, the long range transverse wake field which can cause beam emittance dilution is one of the critical issues. We examined effectiveness of dipole mode damping in three kinds of X-band, π-mode standing wave structures at 11.424GHz with no detuning considered. They represent three damping schemes: damping with cylindrical iris slot, damping with choke cavity and damping with waveguide coupler. We try to reduce external Q factor below 20 in the first two dipole bands, which usually have very high (RT/Q)T. The effect of damping on the acceleration mode is also discussed.

 
WE5PFP097 Flash Beam-Off RF Measurements and Analyses 2240
 
  • S. Pei, C. Adolphsen
    SLAC, Menlo Park, California
  • J. Carwardine
    ANL, Argonne
  • N.J. Walker
    DESY, Hamburg
 
 

Funding: *Work supported by the DOE under contract DE-AC02-76SF00515


The FLASH L-Band superconducting (SC) accelerator facility at DESY has a LLRF system that is similar to that envisioned for ILC. This system has extensive monitoring capability and was used to gather performance data relevant to ILC. In particular, waveform data were recorded with beam off for three, 8-cavity cryomodules to evaluate the input rf stability, perturbations to the SC cavity frequencies and the rf overhead required to achieve constant gradient during the 800 μs pulses. In this paper, we discuss the measurements made in September 2008 and the data analysis procedures, and present key findings on the pulse-to-pulse input rf and cavity field stability.

 
WE6PFP079 Conceptual Design of the Drive Beam for a PWFA-LC 2682
 
  • S. Pei, M.J. Hogan, T.O. Raubenheimer, A. Seryi
    SLAC, Menlo Park, California
  • H.-H. Braun, R. Corsini, J.-P. Delahaye
    CERN, Geneva
 
 

Funding: Work supported by the DOE under contract DE-AC02-76SF00515.


Plasma Wake-Field Acceleration (PWFA) has demonstrated acceleration gradients above 50 GeV/m. Simulations have shown drive/witness bunch configurations that yield small energy spreads in the accelerated witness bunch and high energy transfer efficiency from the drive bunch to the witness bunch, ranging from 30% for a Gaussian drive bunch to 95% for bunch with triangular shaped longitudinal profile. These results open the opportunity for a linear collider that could be compact, efficient and more cost effective than the present microwave technologies. A concept of a PWFA-based Linear Collider (PWFA-LC) has been developed by the PWFA collaboration. Here we will describe the conceptual design and optimization of the drive beam, which includes the drive beam linac and distribution system. We apply experience of the CLIC drive beam design and demonstration in the CLIC Test Facility (CTF3) to this study. We discuss parameter optimization of the drive beam linac structure and evaluate the drive linac efficiency in terms of the drive beam distribution scheme and the klystron / modulator requirements.

 
WE6PFP081 A Concept of Plasma Wake Field Acceleration Linear Collider (PWFA-LC) 2688
 
  • A. Seryi, M.J. Hogan, S. Pei, T.O. Raubenheimer, P. Tenenbaum
    SLAC, Menlo Park, California
  • C. Huang, C. Joshi, W.B. Mori
    UCLA, Los Angeles, California
  • T.C. Katsouleas
    Duke University, Durham, North Carolina
  • P. Muggli
    USC, Los Angeles, California
 
 

Funding: Work supported by the DOE under contract DE-AC02-76SF00515.


Plasma Wake-Field Acceleration (PWFA) has demonstrated acceleration gradients above 50 GeV/m. Simulations have shown drive/witness bunch configurations that yield small energy spreads in the accelerated witness bunch and high energy transfer efficiency from the drive bunch to the witness bunch, ranging from 30% for a Gaussian drive bunch to 95% for shaped longitudinal profile. These results open the opportunity for a linear collider that could be compact, efficient and more cost effective that the present microwave technologies. A concept of a PWFA-based Linear Collider (PWFA-LC) has been developed and is described in this paper. The scheme of the drive beam generation and distribution, requirements on the plasma cells, and optimization of the interaction region parameters are described in detail. The research and development steps, necessary for further development of the concept, are also outlined.

 
WE6RFP089 Applications of a Plasma Wake Field Accelerator 3007
 
  • M.J. Hogan, I. Blumenfeld, N.A. Kirby, S. Pei, T.O. Raubenheimer, A. Seryi, P. Tenenbaum
    SLAC, Menlo Park, California
  • C. Huang, C. Joshi, W. Lu, W.B. Mori
    UCLA, Los Angeles, California
  • T.C. Katsouleas
    Duke University, Durham, North Carolina
  • P. Muggli
    USC, Los Angeles, California
 
 

Funding: Work supported in part by the U.S. Department of Energy under contract number DE-AC02-76SF00515.


An electron beam driven Plasma Wake-Field Accelerator (PWFA) has recently sustained accelerating gradients above 50GeV/m for almost a meter. Future experiments will transition from using a single bunch to both drive and sample the wakefield, to a two bunch configuration that will accelerate a discrete bunch of particles with a narrow energy spread and preserved emittance. The plasma works as an energy transformer to transform high-current, low-energy bunches into relatively lower-current higher-energy bunches. This method is expected to provide high energy transfer efficiency (from 30% up to 95%) from the drive bunch to the accelerated witness bunch. The PWFA has a wide variety of applications and also has the potential to greatly lower the cost of future accelerators. We discuss various possible uses of this technique such as: linac based light sources, injector systems for ring based synchrotron light sources, and for generation of electron beams for high energy electron-hadron colliders.