Intensity limits of the PSI Injector II cyclotron
Anna Kolano, Andreas Adelmann, Roger Barlow, Christian Baumgarten

TL;DR
This paper models and analyzes the current limits of the PSI Injector II cyclotron using advanced simulations, providing insights into maximizing beam current and guiding future upgrades for high-intensity applications.
Contribution
It introduces detailed numerical modeling of space charge effects and halo formation in the PSI Injector II, estimating intensity limits and optimizing collimation strategies.
Findings
Maximum current limit estimated at approximately 3 mA.
Scaling laws relate beam size to current, with a 4th power fit at high intensities.
Potential to exceed 5 mA with collimation adjustments.
Abstract
We investigate limits on the current of the PSI Injector II high intensity separate-sector isochronous cyclotron, in its present configuration and after a proposed upgrade. Accelerator Driven Subcritical Reactors, neutron and neutrino experiments, and medical isotope production all benefit from increases in current, even at the ~ 10% level: the PSI cyclotrons provide relevant experience. As space charge dominates at low beam energy, the injector is critical. Understanding space charge effects and halo formation through detailed numerical modelling gives clues on how to maximise the extracted current. Simulation of a space-charge dominated low energy high intensity (9.5 mA DC) machine, with a complex collimator set up in the central region shaping the bunch, is not trivial. We use the OPAL code, a tool for charged-particle optics calculations in large accelerator structures and beam…
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