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DOE OSTI · 1819119

Enhanced Beam Diagnostics with Existing BPPMs via GPU-powered Multi-Particle Simulation

Abstract

This research aims to utilize the multi-particle code, High-Performance Simulator (HPSim), to realistically model the Side-Coupled-Cavity Linac (CCL) lattice of the LANSCE accelerator. This new model would allow us to predict the beam’s bunch length (the longitudinal spread), which is unavailable for individual accelerating modules or only accessible at the end of the linac. However, a correct bunch length is critical for the high-energy beam transport after the CCL. Its impact would be most significant in the Proton Storage Ring (PSR), where we should be able to reduce losses for the circulating beam. The PSR is scheduled to have a 25% current increase for the neutron spallation target upgrade at the Lujan Center. A highly bunched beam would be necessary to reduce the particle losses and lower the radiation levels produced from the ring. A realistic HPSim model with >1M macro-particles can help tackle the beam losses at the sub-percent level. This new work would also create a realistic surrogate model for future machine learning projects.

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BibTeXRIS

Huang, En-Chuan, Taylor, Charles Edward, Anisimov, Petr Mikhaylovich. 2021-08-31. Enhanced Beam Diagnostics with Existing BPPMs via GPU-powered Multi-Particle Simulation. https://doi.org/10.2172/1819119

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