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20132022
most citedEnergy deposition studies for the High-Luminosity Large Hadron Collider inner triplet magnets

11 citations · 16 across the 3 of their papers we have counts for

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physics.acc-ph20225 cited

Critical problems of energy frontier Muon Colliders: optics, magnets and radiation

Yu. I. Alexahin, E. Barzi, E. Gianfelice-Wendt +8

This White Paper brings together our previous studies on a Muon Collider (MC) and presents a design concept of the 6 TeV MC optics, the superconducting (SC) magnets, and a prelimin…

physics.acc-ph2018

The Higgs Factory Muon Collider Superconducting Magnets and Their Protection Against Beam Decay Radiation

N. V. Mokhov, V. V. Kashikhin, S. I. Striganov +2

Low-energy medium-luminosity Muon Collider (MC) is being studied as a possible Higgs Factory (HF). Electrons from muon decays will deposit more than 300 kW in superconducting magne…

physics.acc-ph2018

Preliminary Modeling Of Radiation Levels At The Fermilab PIP-II Linac

L. Lari, F. Cerutti, L. S. Esposito +5

PIP-II is the Fermilab's flagship project for providing powerful, high-intensity proton beams to the laboratory's experiments. The heart of PIP-II is an 800-MeV superconducting lin…

physics.acc-ph201511 cited

Energy deposition studies for the High-Luminosity Large Hadron Collider inner triplet magnets

N. V. Mokhov, I. L. Rakhno, I. S. Tropin +3

A detailed model of the High Luminosity LHC inner triplet region with new large-aperture Nb3Sn magnets, field maps, corrector packages, and segmented tungsten inner absorbers was b…

physics.acc-ph2013

Improving the Fermilab Booster Notching Efficiency, Beam Losses and Radiation Levels

I. L. Rakhno, A. I. Drozhdin, N. V. Mokhov +2

Currently a fast vertical 1.08-m long kicker (notcher) located in the Fermilab Booster Long-5 straight section is used to remove 3 out of 84 circulating bunches after injection to…