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Photon reflectivity distributions from the LHC beam screen and their implications on the arc beam vacuum system

Academic Article
Publication Date:
2004
abstract:
In particle accelerators with intense positively charged bunched beams, an electron cloud may induce beam instabilities and the related beam induced electron multipacting (BIEM) can result in an undesired pressure rise. In a cryogenic machine such as the large hadron collider (LHC), the BIEM will introduce additional heat load. When present, synchrotron radiation (SR) may generate a significant number of photoelectrons, that may play a role in determining the onset and the detailed properties of the electron cloud related instability. Since electrons are constrained to move along field lines, those created on the accelerator equator in a strong vertical (dipole) field cannot participate in the e-cloud build-up. Therefore, for the LHC there has been a continuous effort to find solutions to absorb the photons on the equator. The solution adopted for the LHC dipole beam screens is a saw-tooth structure on the illuminated equator. SR from a bending magnet beamline at ELETTRA, Italy (BEAR) has been used to measure the reflectivities (forward, back-scattered and diffuse), for a flat and a saw-tooth structured Cu co-laminated surface using both white light SR, similar to the one emitted by LHC, and monochromatic light. Our data show that the saw-tooth structure does reduce the total reflectivity and modifies the photon energy distribution of the reflected photons. The implications of these results on the LHC arc vacuum system are discussed. © 2004 Elsevier B.V. All rights reserved.
Iris type:
01.01 Articolo in rivista
Keywords:
Absorption and reflection spectra: visible and ultraviolet
List of contributors:
Nannarone, Stefano; Pasquali, Luca; Mahne, Nicola; Pedio, Maddalena; Giglia, Angelo
Authors of the University:
GIGLIA ANGELO
MAHNE NICOLA
PEDIO MADDALENA
Handle:
https://iris.cnr.it/handle/20.500.14243/449633
Published in:
APPLIED SURFACE SCIENCE
Journal
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URL

http://www.sciencedirect.com/science/article/pii/S0169433204007676
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