RUS  ENG
Full version
JOURNALS // Vestnik Sankt-Peterburgskogo Universiteta. Seriya 10. Prikladnaya Matematika. Informatika. Protsessy Upravleniya // Archive

Vestnik S.-Petersburg Univ. Ser. 10. Prikl. Mat. Inform. Prots. Upr., 2019 Volume 15, Issue 1, Pages 62–75 (Mi vspui390)

This article is cited in 1 paper

Applied mathematics

Analysis of the dynamics of charged particles in an ideal Penning trap with a rotating field and a buffer gas

A. D. Ovsyannikov

St. Petersburg State University, 7-9, Universitetskaya nab., St. Petersburg, 199034, Russian Federation

Abstract: The paper deals with particle dynamics in a Penning trap with a rotating electric dipole field and a buffer gas. Electromagnetic traps are widely used for the accumulation and storage of charged particles of matter and antimatter for further use in various experiments. In this paper, a general analytical criterion is established, which must satisfy the parameters of the type of trap under investigation in order to provide compression or expansion modes of the trajectory beam. These modes correspond to the cases of asymptotic stability or instability of the system under study. The most effective combinations of parameters were determined, providing the maximum possible degree of stability (or, accordingly, instability) of the system with the minimum possible amplitudes of the rotating electric field. Analytical solutions are constructed for the rapid calculation and analysis of the behavior of individual particles or envelopes of an ellipsoidal beam of trajectories and an estimate of the radius of the accumulated cloud. The proposed approach is applicable to the analysis of the system for any values of the parameters of the studied model of particle dynamics in a trap.

Keywords: Penning trap, Rotating Wall, Penning—Malmberg—Surko trap, charged particle dynamics, stability.

UDC: 519.6

MSC: 65Z05

Received: November 9, 2018
Accepted: December 18, 2018

DOI: 10.21638/11701/spbu10.2019.105



Bibliographic databases:


© Steklov Math. Inst. of RAS, 2026