On the Perturbation of Synchrotron Motion in the Micro-Bunching Instability
Tobias Boltz, Miriam Brosi, Bastian Haerer, Patrik Sch\"onfeldt,, Patrick Schreiber, Minjie Yan, Anke-Susanne M\"uller

TL;DR
This paper investigates how CSR-induced perturbations affect synchrotron motion and micro-bunching instability in electron storage rings, proposing control methods to mitigate these effects through RF modulation.
Contribution
It introduces a detailed analysis of CSR wake potential effects on synchrotron motion and proposes RF amplitude modulation as a control strategy for micro-bunching instability.
Findings
CSR wake potential breaks phase space homogeneity
Quadrupole-like mode may seed micro-bunching
RF modulation can mitigate micro-bunching above threshold
Abstract
The self-interaction of short electron bunches with their own radiation field can have a significant impact on the longitudinal beam dynamics in a storage ring. While higher bunch currents increase the power of the emitted CSR which can be provided to dedicated experiments, it simultaneously amplifies the strength of the self-interaction. Eventually, this leads to the formation of dynamically changing micro-structures within the bunch and thus fluctuating CSR emission, a phenomenon that is generally known as micro-bunching or micro-wave instability. The underlying longitudinal dynamics can be simulated by solving the VFP equation, where the CSR self-interaction can be added as a perturbation to the Hamiltonian. In this contribution, we focus on the perturbation of the synchrotron motion that is caused by introducing this additional wake field. Therefore, we adopt the perspective of a…
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Taxonomy
TopicsParticle Accelerators and Free-Electron Lasers · Particle accelerators and beam dynamics · Gyrotron and Vacuum Electronics Research
