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Particle Beam Dynamics Simulations Using the POOMA Framework
Author(s) -
William Humphrey,
Robert Ryne,
Timothy Cleland,
Julian Cummings,
Salman Habib,
Graham A. Mark,
Ji Qiang
Publication year - 1998
Publication title -
lecture notes in computer science
Language(s) - English
Resource type - Book series
SCImago Journal Rank - 0.249
H-Index - 400
eISSN - 1611-3349
pISSN - 0302-9743
ISBN - 3-540-65387-2
DOI - 10.1007/3-540-49372-7_3
Subject(s) - beamline , computer science , computational science , beam (structure) , charged particle , particle accelerator , fast fourier transform , field (mathematics) , charged particle beam , parallel computing , physics , algorithm , optics , ion , mathematics , quantum mechanics , pure mathematics
A program for simulation of the dynamics of high intensity charged particle beams in linear particle accelerators has been developed in C++ using the POOMA Framework, for use on serial and parallel architectures. The code models the trajectories of charged particles through a sequence of different accelerator beamline elements such as drift chambers, quadrupole magnets, or RF cavities. An FFT-based particle-in-cell algorithm is used to solve the Poisson equation that models the Coulomb interactions of the particles. The code employs an object-oriented design with software abstractions for the particle beam, accelerator beamline, and beamline elements, using C++ templates to efficiently support both 2D and 3D capabilities in the same code base. The POOMA Framework, which encapsulates much of the effort required for parallel execution, provides particle and field classes, particle-field interaction capabilities, and parallel FFT algorithms. The performance of this application running serially and in parallel is compared to an existing HPF implementation, with the POOMA version seen to run four times faster than the HPF code.

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