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Yong-Chul Chae

Publications and source records attributed to Yong-Chul Chae.

2 recordsLinked to original sources

Longitudinal beam dynamics with active cavity systems

In storage-ring-based light sources, harmonic cavities are commonly employed to lengthen the bunch, thereby mitigating collective effects and increasing beam lifetime. While this dual-RF configuration provides important benefits, it also introduces additional challenges. In particular, the impedance of the fundamental cavity modes can drive the beam into a longitudinal coupled-bunch unstable regime. To mitigate this effect, low-level RF (LLRF) feedback is introduced to reduce the effective impedance experienced by the beam. This work investigates longitudinal beam dynamics in the PETRA-IV dual-RF system with normal-conducting cavities, explicitly accounting for the LLRF feedback loop. Both analytical modeling and numerical simulations are used to characterize the onset and growth of coupled-bunch instabilities. The results show that, with appropriately chosen LLRF parameters, the destabilizing effect of the cavity fundamental mode can be effectively suppressed, enabling stable operation of the storage ring at the design beam current. This work highlights the critical role of RF feedback systems in ensuring robust longitudinal stability, thereby supporting the realization of PETRA-IV design goals and contributing to the development of next-generation synchrotron light sources, where high brilliance and operational reliability are essential.

physics.acc-ph

CETASim: A numerical tool for beam collective effect study in storage rings

We developed a 6D multi-particle tracking program CETASim in C++ programming language to simulate intensity-dependent effects in electron storage rings. The program can simulate the beam collective effects due to short-range/long-range wakefields for single/coupled-bunch instability studies. It also features to simulate interactions among charged ions and the trains of electron bunches, including both fast ion and ion trapping effects. The bunch-by-bunch feedback is also included so that the user can simulate the damping of the unstable motion when its growth rate is faster than the radiation damping rate. The particle dynamics is based on the one-turn map, including the nonlinear effects of amplitude-dependent tune shift, high-order chromaticity, and second-order momentum compaction factor. A skew quadrupole can also be introduced by the users, which is very useful for the emittance sharing and the emittance exchange studies. This paper describes the code structure, the physics models, and the algorithms used in CETASim. We also present the results of its application to PETRA-IV storage ring.

physics.acc-ph