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000358326 0247_ $$2doi$$a10.18429/JACOW-HB2023-THA2C3
000358326 0247_ $$2datacite_doi$$a10.15120/GSI-2025-00510
000358326 037__ $$aGSI-2025-00510
000358326 041__ $$aEnglish
000358326 1001_ $$0P:(DE-Ds200)OR5632$$aXiao, Chen$$b0$$eCorresponding author
000358326 1112_ $$a68th Adv. Beam Dyn. Workshop High-Intensity High-Brightness Hadron Beams$$cGeneva$$d2023-10-09 - 2023-10-13$$gHB2023$$wSwitzerland
000358326 245__ $$aPeriodic Solution for Transport of Intense and Coupled Coasting Beams Through Quadrupole Channels
000358326 260__ $$aGeneva, Switzerland$$bJACoW Publishing$$c2024
000358326 300__ $$a372-376
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000358326 500__ $$aPublished by JACoW Publishing under the terms of the Creative Commons Attribution 4.0 International license
000358326 520__ $$aImposing defined spinning to a particle beam increases its stability against perturbations from space charge [Y.-L. Cheon et al., Effects of beam spinning on the fourth-order particle resonance of 3D bunched beams in high intensity linear accelerators, Phys. Rev. Accel. Beams 25, 064002 (2022)]. In order to fully explore this potential, proper matching of intense coupled beams along regular lattices is mandatory. Herein, a novel procedure assuming matched transport is described and bench-marked through simulations. The concept of matched transport along periodic lattices has been extended from uncoupled beams to those with considerable coupling between the two transverse degrees of freedom. For coupled beams, matching means extension of cell-to-cell periodicity from just transverse envelopes to the coupled beam moments and to quantities being derived from these.
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000358326 650_7 $$2Other$$aAccelerator Physics
000358326 650_7 $$2Other$$aBeam Dynamics in Linacs
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000358326 7001_ $$0P:(DE-Ds200)OR0383$$aGroening, Lars$$b1
000358326 773__ $$a10.18429/JACOW-HB2023-THA2C3
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