Simulation of trapped modes in LHC collimator A.Grudiev.

Slides:



Advertisements
Similar presentations
RF aspects of module vacuum system Riccardo Zennaro CERN.
Advertisements

S. N. “ Cavities for Super B-Factory” 1 of 38 Sasha Novokhatski SLAC, Stanford University Accelerator Session April 20, 2005 Low R/Q Cavities for Super.
Effects of wake fields in ATF2 low aperture kicker and IP nano-BPMs Karl Bane April 19, 2005.
3.9 GHz Deflecting Mode Cavity Timothy W. Koeth July 12, 2005.
DESIGN OF A 7-CELLS, HOM DAMPED, SUPERCONDUCTING CAVITY FOR THE STRONG RF FOCUSING EXPERIMENT AT DANE David Alesini, Caterina Biscari, Roberto Boni, Alessandro.
TDI longitudinal impedance simulation with CST PS A.Grudiev 20/03/2012.
Low Impedance Bellows for High Current SRF Accelerators
Impedance aspects of Crab cavities R. Calaga, N. Mounet, B. Salvant, E. Shaposhnikova Many thanks to F. Galleazzi, E. Metral, A. Mc Pherson, C. Zannini.
Impedance and Collective Effects in BAPS Na Wang Institute of High Energy Physics USR workshop, Huairou, China, Oct. 30, 2012.
1 Status of EMMA Shinji Machida CCLRC/RAL/ASTeC 23 April, ffag/machida_ ppt & pdf.
Ivan Bazarov, Single HOM two-pass analysis, SRF mtg, 4 June CHESS / LEPP Single HOM, two-pass analysis Motivation: explain the plot produced by.
History and motivation for a high harmonic RF system in LHC E. Shaposhnikova With input from T. Argyropoulos, J.E. Muller and all participants.
2nd CLIC Advisory Committee (CLIC-ACE), CERN January 2008 Introduction to the CLIC Power Extraction and Transfer Structure (PETS) Design. I. Syratchev.
Development of Transverse Modes Damped DLA Structure* C. Jing, P. Schoessow, A. Kanareykin, Euclid Techlabs, LLC R. Konecny, W. Gai, J. Power, W. Liu,
704MHz Warm RF Cavity for LEReC Binping Xiao Collider-Accelerator Department, BNL July 8, 2015 LEReC Warm Cavity Review Meeting  July 8, 2015.
Higher-Order Modes and Beam-Loading Compensation in CLIC Main Linac Oleksiy Kononenko BE/RF, CERN CLIC RF Structure Development Meeting, March 14, 2012.
LLRF Preliminary Design Review Vojtech Pacak/Ron Akre1 BEAM PHASE DETECTOR – PILLBOX CAVITY Basic Requirements and Parameters – Operating frequency:
RF Tutorial G Burt. TM 010 Monopole Mode E H Beam Z 0 =377 Ohms.
Frequency-domain study of acceleration & beam loading based on a circuit model by raquel fandos.
CLIC Power Extraction and Transfer Structure.
Trapped Modes in LHC Collimator (II) Liling Xiao Advanced Computations Department SLAC National Accelerator Laboratory.
Update on TCTP heating H. Day, B. Salvant Acknowledgments: L. Gentini and the EN-MME team.
Hybrid designs - directions and potential 1 Alessandro D’Elia, R. M. Jones and V. Khan.
TWO-BEAM, MULTI-MODE, DETUNED ACCSELERATING STRUCTURE S.Kazakov 1,2, S.Kuzikov 3, V.Yakovlev 4 J.L. Hirshfield 1,5, 1 Omega-p,Inc., 199 Whitney Ave., New.
D. Lipka, V. Vogel, DESY Hamburg, Germany, Oct Optimization cathode design with gun5 D. Lipka, V. Vogel, DESY Hamburg, Germany.
Main activities and news from the Impedance working group.
Update on new triplet beam screen impedance B. Salvant, N. Wang, C. Zannini 7 th December 2015 Acknowledgments: N. Biancacci, R. de Maria, E. Métral, N.
TESLA DAMPING RING RF DEFLECTORS DESIGN F.Marcellini & D. Alesini.
August 21st 2013 BE-ABP Bérengère Lüthi – Summer Student 2013
Elias Métral, LHC collimation working group meeting, 17/07/061/26 E. Métral for the RLC team LATEST ESTIMATES OF COLLIMATOR IMPEDANCE EFFECTS u Reminder:
Update on the TDI impedance simulations and RF heating for HL- LHC beams Alexej Grudiev on behalf of the impedance team TDI re-design meeting 30/10/2012.
MEW Meeting 28/05/15 Aaron Farricker. Outline Wakefield ahead of a bunch Wakefield in CST comparison of Eigenmode and Wakefield solvers.
Geometric Impedance of LHC Collimators O. Frasciello, S. Tomassini, M. Zobov LNF-INFN Frascati, Italy With contributions and help of N.Mounet (CERN), A.Grudiev.
Impedance & Instabilities
Wake-fields simulations and Test Structure
Finemet cavity impedance studies
Simulation of 200 MHz RF cavities. 11 cells preliminary results
CLIC Main Linac Cavity BPM Snapshot of the work in progress
MDI: Trapped modes and other power losses
RF Power Generation and PETS Design
Variable Gain CMOS LNA MOREIRA E SILVA, Paulo Marcio, DE SOUSA, Fernando Rangel Introduction Simulation.
HOM power in FCC-ee cavities
Electron cloud and collective effects in the FCC-ee Interaction Region
CST simulations of VMTSA
TCTP the CST side F. Caspers, H. Day, A. Grudiev, E. Metral, B. Salvant Acknowledgments: R. Assmann, A. Dallocchio, L. Gentini, C. Zannini Impedance Meeting.
News Request to install SLAC collimator in SPS
Beam impedance of 63mm VM with unshielded Bellows
TCLIA/TCTV transverse impedance simulation
Needle Cathodes for RF Guns
¼ meshed models for Omega3P calculations
Discussion on the TDI impedance specifications
Simulation of Monopole modes trapped in LHC collimator
Simulation of trapped modes in LHC collimator
Beam impedance of 63mm VM with unshielded Bellows
TCLIA/TCTV broad band transverse impedance
CEPC Main Ring Cavity Design with HOM Couplers
Simulation of Longitudinal and Transverse Impedance of TCDD (original geometry) Grudiev
Longitudinal Impedance Studies of VMTSA
Origin of TCLIA/TCTV transverse BB impedance
Simulation of Monopole modes trapped in LHC collimator
Possible Methods for Reducing the Trapped Mode Effect in the SLAC Rotatable Collimator for the LHC Phase II Upgrade Liling Xiao 1.
On rf-finger heating and trapped mode damping in LHC collimator
CLIC Power Extraction and Transfer structure (PETS)
On rf-finger heating and trapped mode damping in LHC collimator
TCLIA/TCTV transverse BB impedance versus gap size
Update of the heating of ALFA detector in 2011
Origin of TCLIA/TCTV transverse BB impedance
Two beam coupling impedance simulations
Transverse impedance of trapped modes in LHC collimator
TCLIA/TCTV transverse BB impedance versus gap size
Presentation transcript:

Simulation of trapped modes in LHC collimator A.Grudiev

LHC collimator prototype geometry in HFSS

Effective longitudinal impedance calculated using GdfidL (left) and measured with SPS beam (right) First mode Second mode Measured by F.Caspers and T. Kroyer Gap varied from 6 to 60 mm

Effective longitudinal impedance calculated using GdfidL (left) and measured with SPS beam (right)

Electric field of the first m=0 mode in log scale (gap=10mm)

f=0.6GHz (15 th -harmonic of bunch frequency) Q=136 r/Q = 0.1 Ohm (accelerator impedance) k = 0.13 V/nC (loss factor) For Max. single bunch energy loss: 0.7V/nC x 16nC = 11V Total energy loss per train (2808 bunches): dE = 0.5 mJ Dissipated power: dE x frev = 6 W First bunch (blue) and total wake (red) along the train for the first m=0 mode

Electric field of the second m=0 mode in log scale (gap=10mm)

f=1.24GHz (31 st -harmonic of bunch frequency) Q=892 r/Q = 2.67 Ohm (accelerator impedance) k = 5.2 V/nC (loss factor) For Max. single bunch energy loss: 4V/nC x 16nC = 64V Total energy loss per train: dE = 2.8 mJ Total dissipated power per collimator: dE x frev = 32 W 12.3% is dissipated in rf fingers: 4 W First bunch (blue) and total wake (red) along the train for the second m=0 mode D. Schulte has calculated a mode at 1.15GHz with 110W of total dissipated power

Longitudinal impedance calculated using Gdfidl (red) and reconstructed from HFSS (blue)

Effective longitudinal (left) and transverse (right) impedance calculated by GdfidL First mode Second mode

Q-factor and transverse impedance of trapped modes Gap modes High frequency Tank modes Transition modes Low frequency Tank modes Transition modes and Gap mode have highest transverse impedance

Electric field distribution of some trapped modes (m=1) Low frequency tank modes Transition modes f = GHz Q = 139 r t = 6.7 Ohm/mm f = GHz Q = 612 r t = 0.06 Ohm/mm f = GHz Q = 961 r t = 353 Ohm/mm f = GHz Q = 808 r t = 185 Ohm/mm

Electric field distribution of gap modes (m=1) f = GHz Q = 172 r t = 60 Ohm/mm f = GHz Q = 170 r t = 398 Ohm/mm f = GHz Q = 168 r t = 122 Ohm/mm f = GHz Q = 165 r t = 566 Ohm/mm

Electric field distribution of high frequency tank modes (m=1) f = GHz Q = 1294 r t = 4.5 mOhm/mm f = GHz Q = 925 r t = 4.2 μOhm/mm f = GHz Q = 945 r t = 55 μOhm/mm f = GHz Q = 1430 r t = 36 μOhm/mm

Table of transverse mode parameters: gap = 5mm f[GHz] Q r l /Q[Ohm/mm^2] r l [Ohm/mm^2] k l [V/nC/mm^2] r t /Q[Ohm/mm] r t [Ohm/mm] k t [V/nC/mm] k t (Fy)[V/nC/mm] e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e e-004