A numerical model of magnetic evaporative beamline cooling predicts a lithium beam can reach 1 mK at 1.2 m/s, and outlines a 12-meter tritium scheme delivering 1e15 atoms per second at 1 mK.
Maxwell's Equations for Magnets
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
Magnetostatic fields in accelerators are conventionally described in terms of multipoles. We show that in two dimensions, multipole fields do provide solutions of Maxwell's equations, and we consider the distributions of electric currents and geometries of ferromagnetic materials required (in idealized situations) to generate specified multipole fields. Then, we consider how to determine the multipole components in a given field. Finally, we show how the two-dimensional multipole description may be extended to three dimensions; this allows fringe fields, or the main fields in such devices as undulators and wigglers, to be expressed in terms of a set of modes, where each mode provides a solution to Maxwell's equations.
citation-role summary
citation-polarity summary
fields
physics.ins-det 1years
2025 1verdicts
CONDITIONAL 1roles
background 1polarities
background 1representative citing papers
citing papers explorer
-
Dynamics of Magnetic Evaporative Beamline Cooling for Preparation of Cold Atomic Beams
A numerical model of magnetic evaporative beamline cooling predicts a lithium beam can reach 1 mK at 1.2 m/s, and outlines a 12-meter tritium scheme delivering 1e15 atoms per second at 1 mK.