Design of beam optics for the Future Circular Collider e+e- -collider rings
K. Oide, M. Aiba, S. Aumon, M. Benedikt, A. Blondel, A. Bogomyagkov,, M. Boscolo, H. Burkhardt, Y. Cai, A. Doblhammer, B. Haerer, B. Holzer, J.M., Jowett, I. Koop, M. Koratzinos, E. Levichev, L. Medina, K. Ohmi, Y., Papaphilippou, P. Piminov, D. Shatilov, S. Sinyatkin

TL;DR
This paper presents a comprehensive beam optics design for the FCC-ee collider, optimizing parameters like energy range, dynamic aperture, and synchrotron radiation management to support future high-energy electron-positron collisions.
Contribution
It introduces a novel beam optics scheme incorporating crab-waist and local chromaticity correction without extra sextupoles, and applies magnet tapering for energy compensation.
Findings
Achieved a momentum acceptance > +/-2%
Designed an asymmetric layout reducing SR photon energy below 100 keV
Ensured sufficient dynamic aperture for beam stability
Abstract
A beam optics scheme has been designed for the Future Circular Collider-e+e- (FCC-ee). The main characteristics of the design are: beam energy 45 to 175 GeV, 100 km circumference with two interaction points (IPs) per ring, horizontal crossing angle of 30 mrad at the IP and the crab-waist scheme [1] with local chromaticity correction. The crab-waist scheme is implemented within the local chromaticity correction system without additional sextupoles, by reducing the strength of one of the two sextupoles for vertical chromatic correction at each side of the IP. So-called "tapering" of the magnets is applied, which scales all fields of the magnets according to the local beam energy to compensate for the effect of synchrotron radiation (SR) loss along the ring. An asymmetric layout near the interaction region reduces the critical energy of SR photons on the incoming side of the IP to values…
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