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Prediction of Beam Losses during Crab Cavity Quenches at the High Luminosity LHC

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Prediction of Beam Losses during Crab Cavity Quenches at the High Luminosity LHC. / Apsimon, Robert; Burt, Graeme; Dexter, Amos et al.
In: Physical Review Accelerators and Beams, Vol. 22, 061001, 18.06.2019.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Apsimon, R, Burt, G, Dexter, A, Shipman, N, Castilla Loeza, A, Macpherson, A, Ness Sjobak, K, Santamaria Garcia, A, Stapley, N, Alekou, A & Appleby, R 2019, 'Prediction of Beam Losses during Crab Cavity Quenches at the High Luminosity LHC', Physical Review Accelerators and Beams, vol. 22, 061001. https://doi.org/10.1103/PhysRevAccelBeams.22.061001

APA

Apsimon, R., Burt, G., Dexter, A., Shipman, N., Castilla Loeza, A., Macpherson, A., Ness Sjobak, K., Santamaria Garcia, A., Stapley, N., Alekou, A., & Appleby, R. (2019). Prediction of Beam Losses during Crab Cavity Quenches at the High Luminosity LHC. Physical Review Accelerators and Beams, 22, Article 061001. https://doi.org/10.1103/PhysRevAccelBeams.22.061001

Vancouver

Apsimon R, Burt G, Dexter A, Shipman N, Castilla Loeza A, Macpherson A et al. Prediction of Beam Losses during Crab Cavity Quenches at the High Luminosity LHC. Physical Review Accelerators and Beams. 2019 Jun 18;22:061001. doi: 10.1103/PhysRevAccelBeams.22.061001

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Bibtex

@article{4cb44d371d70413ebf22e6de76f2b4b4,
title = "Prediction of Beam Losses during Crab Cavity Quenches at the High Luminosity LHC",
abstract = "Studies of the crab cavities at KEKB revealed that the RF phase could shift by up to 50o within ~50 μs during a quench; while the cavity voltage is still at approximately 75% of its nominal amplitude. If such a failure were to occur on the HL-LHC crab cavities, it is likely that the machine would sustain substantial damage to the beam line and surrounding infrastructure due to uncontrolled beam loss before the machine protection system could dump the beam. We have developed a low-level RF system model, including detuning mechanisms and beam loading, and use this to simulate the behaviour of a crab cavity during a quench, modeling the low-level RF system, detuning mechanisms and beam loading. We supplement this with measurement data of the actual RF response of the proof of principle Double-Quarter Wave Crab Cravity during a quench. Extrapolating these measurements to the HL-LHC, we show that Lorentz Force detuning is the dominant effect leading to phase shifts in the crab cavity during quenches; rather than pressure detuning which is expected to be dominant for the KEKB crab cavities. The total frequency shift for the HL-LHC crab cavities during quenches is expected to be about 460 Hz, leading to a phase shift of no more than 3o. The results of the quench model are read into a particle tracking simulation, SixTrack, and used to determine the effect of quenches on the HL-LHC beam. The quench model has been benchmarked against the KEKB experimental measurements. In this paper we present the results of the simulations on a crab cavity failure for HL-LHC as well as for the SPS and show that beam loss is negligible when using a realistic low-level RF response.",
author = "Robert Apsimon and Graeme Burt and Amos Dexter and Nick Shipman and {Castilla Loeza}, Alejandro and Alick Macpherson and {Ness Sjobak}, Kyrre and {Santamaria Garcia}, Andrea and Niall Stapley and A. Alekou and Robert Appleby",
year = "2019",
month = jun,
day = "18",
doi = "10.1103/PhysRevAccelBeams.22.061001",
language = "English",
volume = "22",
journal = "Physical Review Accelerators and Beams",
issn = "2469-9888",
publisher = "American Physical Society",

}

RIS

TY - JOUR

T1 - Prediction of Beam Losses during Crab Cavity Quenches at the High Luminosity LHC

AU - Apsimon, Robert

AU - Burt, Graeme

AU - Dexter, Amos

AU - Shipman, Nick

AU - Castilla Loeza, Alejandro

AU - Macpherson, Alick

AU - Ness Sjobak, Kyrre

AU - Santamaria Garcia, Andrea

AU - Stapley, Niall

AU - Alekou, A.

AU - Appleby, Robert

PY - 2019/6/18

Y1 - 2019/6/18

N2 - Studies of the crab cavities at KEKB revealed that the RF phase could shift by up to 50o within ~50 μs during a quench; while the cavity voltage is still at approximately 75% of its nominal amplitude. If such a failure were to occur on the HL-LHC crab cavities, it is likely that the machine would sustain substantial damage to the beam line and surrounding infrastructure due to uncontrolled beam loss before the machine protection system could dump the beam. We have developed a low-level RF system model, including detuning mechanisms and beam loading, and use this to simulate the behaviour of a crab cavity during a quench, modeling the low-level RF system, detuning mechanisms and beam loading. We supplement this with measurement data of the actual RF response of the proof of principle Double-Quarter Wave Crab Cravity during a quench. Extrapolating these measurements to the HL-LHC, we show that Lorentz Force detuning is the dominant effect leading to phase shifts in the crab cavity during quenches; rather than pressure detuning which is expected to be dominant for the KEKB crab cavities. The total frequency shift for the HL-LHC crab cavities during quenches is expected to be about 460 Hz, leading to a phase shift of no more than 3o. The results of the quench model are read into a particle tracking simulation, SixTrack, and used to determine the effect of quenches on the HL-LHC beam. The quench model has been benchmarked against the KEKB experimental measurements. In this paper we present the results of the simulations on a crab cavity failure for HL-LHC as well as for the SPS and show that beam loss is negligible when using a realistic low-level RF response.

AB - Studies of the crab cavities at KEKB revealed that the RF phase could shift by up to 50o within ~50 μs during a quench; while the cavity voltage is still at approximately 75% of its nominal amplitude. If such a failure were to occur on the HL-LHC crab cavities, it is likely that the machine would sustain substantial damage to the beam line and surrounding infrastructure due to uncontrolled beam loss before the machine protection system could dump the beam. We have developed a low-level RF system model, including detuning mechanisms and beam loading, and use this to simulate the behaviour of a crab cavity during a quench, modeling the low-level RF system, detuning mechanisms and beam loading. We supplement this with measurement data of the actual RF response of the proof of principle Double-Quarter Wave Crab Cravity during a quench. Extrapolating these measurements to the HL-LHC, we show that Lorentz Force detuning is the dominant effect leading to phase shifts in the crab cavity during quenches; rather than pressure detuning which is expected to be dominant for the KEKB crab cavities. The total frequency shift for the HL-LHC crab cavities during quenches is expected to be about 460 Hz, leading to a phase shift of no more than 3o. The results of the quench model are read into a particle tracking simulation, SixTrack, and used to determine the effect of quenches on the HL-LHC beam. The quench model has been benchmarked against the KEKB experimental measurements. In this paper we present the results of the simulations on a crab cavity failure for HL-LHC as well as for the SPS and show that beam loss is negligible when using a realistic low-level RF response.

U2 - 10.1103/PhysRevAccelBeams.22.061001

DO - 10.1103/PhysRevAccelBeams.22.061001

M3 - Journal article

VL - 22

JO - Physical Review Accelerators and Beams

JF - Physical Review Accelerators and Beams

SN - 2469-9888

M1 - 061001

ER -