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Dive into the research topics where C. M. Celata is active.

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Featured researches published by C. M. Celata.


ieee particle accelerator conference | 2007

Simulations of electron cloud effects on the beam dynamics for the FNAL main injector upgrade

Kiran G. Sonnad; Miguel A. Furman; J.-L. Vay; Marco Venturini; C. M. Celata; David P. Grote

The Fermilab main injector (MI) is being considered for an upgrade as part of the high intensity neutrino source (HINS) effort. This upgrade will involve a significant increasing of the bunch intensity relative to its present value. Such an increase will place the MI in a regime in which electron-cloud effects are expected to become important. We have used the electrostatic particle-in-cell code WARP, recently augmented with new modeling capabilities and simulation techniques, to study the dynamics of beam-electron cloud interaction. This work in progress involves a systematic assessment of beam instabilities due to the presence of electron clouds.


ieee particle accelerator conference | 2007

Self-consistent 3D modeling of electron cloud dynamics and beam response

Miguel A. Furman; C. M. Celata; M. Kireeff-Covo; Kiran G. Sonnad; J.-L. Vay; Marco Venturini; R. C. Cohen; A. Friedman; D.P. Grote; A.W. Molvik; P. Stoltz

We present recent advances in the modeling of beam- electron-cloud dynamics, including surface effects such as secondary electron emission, gas desorption, etc, and volumetric effects such as ionization of residual gas and charge-exchange reactions. Simulations for the HCX facility with the code WARP/POSINST will be described and their validity demonstrated by benchmarks against measurements. The code models a wide range of physical processes and uses a number of novel techniques, including a large-timestep electron mover that smoothly interpolates between direct orbit calculation and guiding-center drift equations, and a new computational technique, based on a Lorentz transformation to a moving frame, that allows the cost of a fully 3D simulation to be reduced to that of a quasi-static approximation.


Proceedings of the 2005 Particle Accelerator Conference | 2005

The Dynamic Aperture of an Electrostatic Quadrupole Lattice

C. M. Celata; F.M. Bieniosek; P.A. Seidl; A. Friedman; D.P. Grote; L. Prost

In heavy-ion-driven inertial fusion accelerator concepts, dynamic aperture is important to the cost of the accelerator, most especially for designs which envision multibeam linacs, where extra clearance for each beam greatly enlarges the transverse scale of the machine. In many designs the low-energy end of such an accelerator uses electrostatic quadrupole focusing. The dynamic aperture of such a lattice has been investigated here for intense, space-charge-dominated ion beams using the 2-D transverse slice version of the 3-D particle-in-cell simulation code WARP. The representation of the focusing field used is a 3-D solution of the Laplace equation for the biased focusing elements, as opposed to previous calculations, which used a less-accurate multipole approximation. 80-85% radial filling of the aperture is found to be possible. Results from the simulations, as well as corroborating data from the High Current Experiment at LBNL, are presented.


Archive | 2000

Terascale simulations for heavy ion inertial fusion energy

A. Friedman; R.H. Cohen; D.P. Grote; W.M. Sharp; C. M. Celata; E.P. Lee; J-L Vay; Ronald C. Davidson; Igor D. Kaganovich; W W Lee; Hong Qin; D.R. Welch; I. Haber; R. A. Kishek

The intense ion beams in a heavy ion Inertial Fusion Energy (IFE) driver and fusion chamber are non-neutral plasmas whose dynamics are largely dominated by space charge. We propose to develop a source-to-target Heavy Ion Fusion (HIF) beam simulation capability: a description of the kinetic behavior of this complex, nonlinear system which is both integrated and detailed. We will apply this new capability to further our understanding of key scientific issues in the physics of ion beams for IFE. The simulations will entail self-consistent field descriptions that require interprocessor communication, but are scalable and will run efficiently on terascale architectures. This new capability will be based on the integration of three types of simulations, each requiring terascale computing: (1) simulations of acceleration and confinement of the space-charge-dominated ion beams through the driver (accelerator, pulse compression line, and final focusing system) which accurately describe their dynamics, including emittance growth (phase-space dilution) effects; these are particle-in-cell (PIC) models; (2) electromagnetic (EM) and magnetoinductive (Darwin) simulations which describe the beam and the fusion chamber environment, including multibeam, neutralization, stripping, beam and plasma ionization processes, and return current effects; and (3) highly detailed simulations (6f, multispecies PIC, continuum Vlasov), which can examine electron effectsmorexa0» and collective modes in the driver and chamber, and can study halo generation with excellent statistics, to ensure that these effects do not disrupt the focusability of the beams. The code development will involve: (i) adaptation of existing codes to run efficiently on multi-SMP computers that use a hybrid of shared and distributed memory; (ii) development of new and improved numerical algorithms, e.g., averaging techniques that will afford larger timesteps; and (iii) incorporation of improved physics models (e.g., for self-magnetic, module impedance, atomic physics, and multibeam effects) that will be made practical by the terascale capability. The codes will be linked using scripting tools for intercommunication and code steering, workspace tools for heterogeneous computations, and self-describing data files (e.g., NetCDF).«xa0less


PAC09, Vancouver, Canada, May 3-9, 2009 | 2009

Update on Electron-Cloud Simulations Using the Package WARP-POSINST

J.-L. Vay; C. M. Celata; Miguel A. Furman; Marco Venturini; Kiran G. Sonnad; G. Penn; David Peter Grote


Physical Review Special Topics-accelerators and Beams | 2006

Beam energy scaling of ion-induced electron yield fromK+impact on stainless steel

Michel Kireeff Covo; A.W. Molvik; A. Friedman; G. Westenskow; J.J. Barnard; R. C. Cohen; P.A. Seidl; Joe W. Kwan; Grant Logan; D. Baca; Frank Bieniosek; C. M. Celata; Jean-Luc Vay; J. Vujic


Lawrence Berkeley National Laboratory | 2009

Cyclotron Resonances in Electron Cloud Dynamics

C. M. Celata; Miguel A. Furman; J.-L. Vay; J. S.T. Ng; David Peter Grote; M. Pivi; L. Wang


Lawrence Berkeley National Laboratory | 2008

Electron Cyclotron Resonances in Electron Cloud Dynamics

C. M. Celata; C.M. Celata; Miguel A. Furman; J.-L. Vay; Jennifer W. Yu


Journal Name: Physical Review Special Topics; Journal Volume: 9; Related Information: Journal Publication Date: 2006 | 2006

Beam Energy Scaling on Ion-Induced Electron Yield from K+ Impacton Stainless Steel

Michel Kireeff Covo; A.W. Molvik; A. Friedman; G. Westenskow; J.J. Barnard; R.H. Cohen; David Peter Grote; Steven M. Lund; P.A. Seidl; Joe W. Kwan; Grant Logan; D. Baca; Frank Bieniosek; C. M. Celata; Vay Jean-Luc; J. Vujic


Lawrence Berkeley National Laboratory | 2006

Electron Cloud induced instabilities in the Fermilab Main Injector (MI) for the High Intensity Neutrino Source (HINS) project

Kiran G. Sonnad; Miguel A. Furman; Jean-Luc Vay; Marco Venturini; C. M. Celata; David P. Grote

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A. Friedman

Lawrence Livermore National Laboratory

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P.A. Seidl

Lawrence Berkeley National Laboratory

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Steven M. Lund

Lawrence Livermore National Laboratory

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A.W. Molvik

Lawrence Livermore National Laboratory

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J.J. Barnard

Lawrence Livermore National Laboratory

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F.M. Bieniosek

Lawrence Berkeley National Laboratory

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Miguel A. Furman

Lawrence Berkeley National Laboratory

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J.-L. Vay

Lawrence Berkeley National Laboratory

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D.P. Grote

Lawrence Livermore National Laboratory

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