Speaker
Description
Wakefields and beam coupling impedances play a central role in determining the collective dynamics and stability of charged particle beams in accelerators. This lecture introduces the fundamental physical concepts underlying wakefield generation and their formal description in both the time and frequency domains.
After a general introduction to the physics of wakefields, the perturbative framework commonly adopted in accelerator physics is presented, together with its main assumptions and limitations. Particular emphasis is placed on the rigid beam approximation and the kick approximation, which allow a simplified yet powerful description of beam–environment interactions. Wake functions and wake potentials are defined and discussed, leading naturally to the introduction of longitudinal and transverse coupling impedances and their principal properties and formulae.
The case of single particle Green function as well as the bunch case are treated, giving the definition of the typically used quantities to describe such effects. Coupling impedance is introduced as Fourier Transform of the wake function, relevant to describe such interactions in ring accelerators.
The deep connection between wakefields and electromagnetic fields is highlighted through the Panofsky–Wenzel theorem, and the harmonic nature of wake functions and impedances is emphasized. The lecture establishes the formal definitions and tools required for advanced applications addressed in subsequent lectures.
Special attention is given to the frequency ranges relevant for hadron machines, where low-frequency impedance contributions are often dominant. The general concepts are illustrated with two of the most important and ubiquitous impedance sources in accelerators: the resistive wall and cavity higher-order modes, including trapped modes.
The goal of the lecture is to provide a solid conceptual and mathematical foundation for understanding beam–structure interaction and its impact on accelerator performance.