Mu2e Extinction and Extinction Monitoring (2.09) Lehman CD-1 Review of Mu2e June 6-7, 2012 Eric.Prebys Extinction L3 Manager Dr. Smith: We’re doomed! Maureen:

Slides:



Advertisements
Similar presentations
Muon g-2 Inflector AEM Meeting 11/25/2013 Chris Polly Muon g-2 Project Manager.
Advertisements

Masahito TOMIZAWA and Satoshi MIHARA Accelerator and proton beam.
G. Velev 1/24/ Ferrite Tests for Mu2e Beam- Line Extinction Uses G. Velev Technical Division Magnet Systems Department.
WBS 2.08 Extinction Independent Design Review of Mu2e 5/3/11 Eric Prebys L3 Manager for Extinction.
Hall D Photon Beam Simulation and Rates Part 1: photon beam line Part 2: tagger Richard Jones, University of Connecticut Hall D Beam Line and Tagger Review.
Andrei Nomerotski 1 3D ISIS : Different approach to ISIS Andrei Nomerotski, LCFI Collaboration Meeting Bristol, 20 June 2006 Outline  What is 3D ? u Reviewed.
ALPHA Storage Ring Indiana University Xiaoying Pang.
Eric Prebys Representing the “Mu2e Task Force”: Steve Werkema Jim Morgan Vladimir Nagaslaev Chuck Ankenbrandt Vladimir Shiltsev Ioanis Kourbanis *Mu2e-doc-1911.
Magnets for Mu2e Resonant Extraction: Design and Scope Changes V.Nagaslaev 05/09/2013.
A new idea of the vertex detector for ILC Y. Sugimoto Nov
Jornadas LIP, Dez P. Martins - CFTP-IST The NA60 Silicon Vertex Telescopes Dimuon measurements Dimuon measurements Vertex telescope used in: Vertex.
A fast RF kicker for the MEIC electron cooler Andrew Kimber Amy Sy 31 st March 2015 Thomas Jefferson National Accelerator Facility is managed by Jefferson.
 A GEANT4-based simulation was performed of the production target, solenoid, selection channel, and spectrometer.  The acceptance was found to be 8.3x10.
Jornadas LIP 2008 – Pedro Ramalhete. 17 m hadron absorber vertex region 8 MWPCs 4 trigger hodoscopes toroidal magnet dipole magnet hadron absorber targets.
1 Status of EMMA Shinji Machida CCLRC/RAL/ASTeC 23 April, ffag/machida_ ppt & pdf.
October 31, BDS Group1 ILC Beam Delivery System “Hybrid” Layout 2006e Release Preliminary M. Woodley.
Mu2e Experiment and Issues Rick Coleman, Fermilab RESMM’12, February 2012.
Basic BPM Hardware Theory Jim Steimel. Wall Current Charge in a cylindrical perfectly conducting pipe produces an equal and opposite image charge at the.
Ralph Assmann What Do We Want To Measure (in 2009) R. Assmann S. Redaelli, V. Previtali CERN/BE discussed with W. Scandale CERN/EN26/3/2009CC09  See also.
1 EPIC SIMULATIONS V.S. Morozov, Y.S. Derbenev Thomas Jefferson National Accelerator Facility A. Afanasev Hampton University R.P. Johnson Muons, Inc. Operated.
F Project-X Related Issues in Recycler A.Burov, C.Gattuso, V.Lebedev, A.Leveling, A.Valishev, L.Vorobiev Fermilab AAC Review 8/8/2007.
Design of an Isochronous FFAG Ring for Acceleration of Muons G.H. Rees RAL, UK.
Eric Prebys, FNAL HB2012, Beijing, China.  Representing the Mu2e Collaboration  24 Institutions  ~120 Collaborators  This talk has direct contributions.
Optimization of Field Error Tolerances for Triplet Quadrupoles of the HL-LHC Lattice V3.01 Option 4444 Yuri Nosochkov Y. Cai, M-H. Wang (SLAC) S. Fartoukh,
1 Simulations of fast-ion instability in ILC damping ring 12 April ECLOUD 07 workshop Eun-San Kim (KNU) Kazuhito Ohmi (KEK)
F Beam Line Tuners Vic Scarpine Instrumentation DoE Review Oct 28-31, 2002.
Eric Prebys Accelerator Physics Center Fermilab *Very much a work in progress 7/24/09.
Eric Prebys Accelerator Physics Center Fermilab 7/30/09.
Accumulator Stacktail Cooling Paul Derwent December 18, 2015.
Project X RD&D Plan Beam Transfer Line and Recycler Injection David Johnson AAC Meeting February 3, 2009.
Proton Source & Site Layout Keith Gollwitzer Accelerator Division Fermi National Accelerator Laboratory Muon Accelerator Program Review Fermilab, August.
Mu2e Mu2e CD-2 Review Template Eric Prebys Extinction October 21-24, 2014.
Mu2e and Project X, September 3, 2008 E Prebys Background: Proton Economics in Project X Era* Assume  9mA*1ms = 5.3x10 13 protons/linac “blast”  Main.
1 Beam Extinction and Monitoring at the Upcoming Mu2e Experiment Ryan J. Hooper on behalf of the Mu2e Collaboration DPF 2015 August 5th, 2015.
LHC-CC Validity Requirements & Tests LHC Crab Cavity Mini Workshop at CERN; 21. August Remarks on using the LHC as a test bed for R&D equipment.
 A model of beam line built with G4Beamline (scripting tool for GEANT4)  Simulated performance downstream of the AC Dipole for core of beam using  x.
The Introduction to CSNS Accelerators Oct. 5, 2010 Sheng Wang AP group, Accelerator Centre,IHEP, CAS.
Beam losses in the CLIC drive beam: specification of acceptable level and how to handle them ACE Michael Jonker.
SNuMI: WBS 1.1 Booster Upgrades Eric Prebys $642K FY06$ (no contingency, no G&A) xx% contingency Main Injector & Recycler BNB NuMI Tunnel Booster Ring.
PSB H- injection concept J.Borburgh, C.Bracco, C.Carli, B.Goddard, M.Hourican, B.Mikulec, W.Weterings,
Robert R. Wilson Prize Talk John Peoples April APS Meeting: February 14,
2 February 8th - 10th, 2016 TWIICE 2 Workshop Instability studies in the CLIC Damping Rings including radiation damping A.Passarelli, H.Bartosik, O.Boine-Fankenheim,
Global Design Effort ILC Damping Rings: R&D Plan and Organisation in the Technical Design Phase Andy Wolski University of Liverpool and the Cockcroft Institute,
COMET Task Force 16/Oct/2008 J-PARC PAC meeting Satoshi MIHARA.
ELENA RF Manipulations S. Hancock. Apart from debunching before and rebunching after cooling, the principal role of the rf is to decelerate the beam and.
Collimation Aspects for Crab Cavities? R. Assmann, CERN Thanks to Daniel Wollmann for presenting this talk on my behalf (criticism and complaints please.
Extinction Eric Prebys Mu2e Extinction Technical Design Review 2 November 2015.
6 July 2010 | TU Darmstadt | Fachbereich 18 | Institut Theorie Elektromagnetischer Felder | Sabrina Appel | 1 Micro bunch evolution and „turbulent beams“
Ferrite measurements of Mu2e AC dipole Summer Student Meeting August 25, 2010 Student: Evgeny Bulushev, NSU Supervisor: George Velev, TD\Magnet Systems.
Simulation of Extinction Channel Eric Prebys Mu2e Extinction Technical Design Review 2 November 2015.
Progress Report on the Ultra-fast Harmonic Kicker Cavity Design and Beam Dynamic Simulation Yulu Huang 1,2 H. Wang 1, R. A. Rimmer 1, S. Wang 1 1.Thomas.
Booster Corrector Review, Oct. 10 th, 2006 E. Prebys Introduction/Specifications Eric Prebys Proton Plan Manager.
ESLS Workshop Nov 2015 MAX IV 3 GeV Ring Commissioning Pedro F. Tavares & Åke Andersson, on behalf of the whole MAX IV team.
BEAM TRANSFER CHANNELS, INJECTION AND EXTRACTION SYSTEMS
BEAM LOSS MONITORING SYSTEM
Saikat Biswas, A. Abuhoza, U. Frankenfeld, C. Garabatos,
BE/RF-IS Contribution to LIU C. Rossi and M. Paoluzzi
Large Booster and Collider Ring
Joint Meeting SPS Upgrade Study Group and SPS Task Force
The COMET Experiment Ajit Kurup, Imperial College London, on behalf of the COMET Collaboration. ABSTRACT The COherent Muon to Electron Transition (COMET)
BEAM LOSS MONITORING SYSTEM
The Proposed Conversion of CESR to an ILC Damping Ring Test Facility
CLIC damping rings working plan towards the CDR
ATF project meeting, Feb KEK, Junji Urakawa Contents :
Status of CTC activities for the Damping rings
Kicker specifications for Damping Rings
Gap Transient Suppression using Increased Bunch Density
12 Steps to a Cooler Design
Crab Crossing Named #1 common technical risk (p. 6 of the report)
Status of RCS eRHIC Injector Design
Presentation transcript:

Mu2e Extinction and Extinction Monitoring (2.09) Lehman CD-1 Review of Mu2e June 6-7, 2012 Eric.Prebys Extinction L3 Manager Dr. Smith: We’re doomed! Maureen: Oh really, Dr. Smith, can’t you think of some other word? “Doomed” is so final. Dr. Smith: The only other word I can think of is “extinction”. - “Lost in Space”, ep. 3x01

Outline Scope Extinction  Requirements  Concept  Alternatives  Operational Risks  Optimization for CD-2 Extinction Monitoring  Requirements  Concept  Alternatives  Optimization for CD-2 Cost Risk Summary E.Prebys - DOE CD-1 Review2

Scope E.Prebys - DOE CD-1 Review3 WBS 2.09 Extinction E. Prebys WBS 2.09 Extinction E. Prebys Internal Extinction System (E. Prebys) Internal Extinction System (E. Prebys) Conceptual (E. Prebys) Conceptual (E. Prebys) External Extinction System (E. Prebys) External Extinction System (E. Prebys) External Monitoring (P. Kasper) External Monitoring (P. Kasper)

Extinction Requirements The requirements for extinction are described in detail in Mu2e-doc-1105 and Mu2e-doc E.Prebys - DOE CD-1 Review4

Internal Extinction The current method of beam transfer insures a fairly good level (<10 -5 ) level of extinction going into the Delivery Ring, so the issue is how will out of time beam grow during the spill. Effects considered (see talk Mu2e-doc-1594)  RF noise  Intrabeam scattering  Beam loading  Beam-gas interaction  Scattering off of extraction septum E.Prebys - DOE CD-1 Review5 Dominant effect

Internal Simulation* Currently being simulated  Preminary estimate <10 -4 E.Prebys - DOE CD-1 Review6 *Nick Evans

Generic Extinction Analysis *al la FNAL-BEAM-DOC-2925 Beam fully extinguished when deflection equals twice full admittance (A) amplitude At collimator: At kicker: Angle to extinguish beam 7E.Prebys - DOE CD-1 Review

Magnet Considerations E.Prebys - DOE CD-1 Review8 Bend strength to extinguish: Stored Energy:  Large  x, long weak magnets - Assume  x =250m, L=6m - Factor of 4 better than  x =50m, L=2m

Alternatives Considered Deflection Dipole  Single frequency dipole o Nominal system in Mu2e proposal o Slewing through transmission window resulted in unacceptable transmission efficiency o Would likely require compensating dipole, which would severely impact beam line design  Broad band kicker o Beyond current state of the art  “MECO” system – three harmonic components o Lower frequency than current high frequency dipole o Additional magnet and power supply required o Inferior transmission performance E.Prebys - DOE CD-1 Review9

Waveform Analysis* E.Prebys - DOE CD-1 Review10 a) b) *Mu2e-DOC-552

AC Dipole System System relies on two harmonic components  300 kHz component to sweep beam past transmission channel  3.8 MHz component to reduce slewing at transmission peak E.Prebys - DOE CD-1 Review11

E.Prebys - DOE CD-1 Review12 Simulations* *A. Drozhdin and I. Rakhno Working to understand this difference Looks like ~10 -7 should be doable

Magnet Prototype* E.Prebys - DOE CD-1 Review13 Gap Cooling channel Conductor Vacuum Box Ferrite *Design by Sasha Makarov and Vladimir Kashikhin

300 kHz Power Supply* Will require electromechanical tuner to maintain resonant frequency Phase locked to Delivery Ring RF to ~1 ns E.Prebys - DOE CD-1 Review14 *Howie Pfeffer, Ken Bourkland

Operational Risks E.Prebys - DOE CD-1 Review15

Optimizations for CD-2 Continue simulation of evolution of out of time particles in Delivery Ring ring, and optimization of in-ring collimation. Design momentum collimation system for Delivery Ring  Placement of collimator in dispersion region very challenging. Continue development and optimization of both low and high frequency components for AC dipole system.  Concept has been established at both frequencies  Low frequency power supply straightforward, high frequency “off the shelf”. Simulation of extinction collimation channel.  Understand and correct asymmetric behavior Phase locking with beam transfer from Recycler  Calculations show it should not be challenging for the hardware, but must be implemented in power supply and controls system E.Prebys - DOE CD-1 Review16

Extinction Monitor Requirements E.Prebys - DOE CD-1 Review17 Mu2e Extinction Monitor Requirements (Mu2e-doc-894) Specifies the measurement, the measurement precision, and reliability of operation SpecificationUpstream MonitorTarget Monitor Extinction sensitivity Integration time < 10 s (6  10 6 beam pulses)~1 hr (2  10 9 beam pulses) Timing resolution< 10 ns Dead-time< 10 ns Rate dependent error over dynamic range < 10% Increase in beam emittance< 10% N/A Initial readiness First availability of beamWhen production target ready Repair Access time (assumes once monthly access required) 4 hrs Radiation hardness (minimum protons delivered before replacement required) 4  POT

Options Considered Single Particle  Measure inter-bunch beam at the single particle level  Need something very fast (Cerenkov?)  Probably have to “blind” detector at bunch time  Pros: best picture of out of bunch beam  Cons: hard Statistical:  use either a thin scatterer, or small acceptance target monitor to count a small (10 -7 or ?) fraction of beam particles.  Statistically measure inter-bunch beam.  Pros: straightforward  Cons: limited sensitivity to fluctuations in extinction (is that important?) 18E.Prebys - DOE CD-1 Review

Internal (fast) Monitoring The low resolution monitor will need to measure extinction down to to validate the extinction of the beam coming out of the Delivery Ring. Base line approach: Thin scatterer followed by charged particle telescope E.Prebys - DOE CD-1 Review19

External (precision) Monitoring Relies on channel to select high momentum scatters from the target. E.Prebys - DOE CD-1 Review20 Tracker, based on high speed pixels Production Target

Alternatives Considered Fast Monitoring  Various types of direct detection techniques were considered, including Cerenkov detectors. o All considered beyond state of the art. Precision monitoring  A second detector, optimized for lower momentum and based on timing and calorimetry, is being developed at UC Irvine o Also being considered as an alternative for the fast monitor, if the simple device turns out to be impractical. E.Prebys - DOE CD-1 Review21

Optimizations for CD-2 Develop design for fast measurement.  NIU joining the effort Optimize design for precision measurement  In particular, develop accurate model of radiation exposure. E.Prebys - DOE CD-1 Review22

Cost Estimation Internal Extinction  One TeV style collimator External Extinction  AC Dipole: Engineering Estimate from TJ Gardner  AC Dipole Power Supply: o Low Frequency: Engineering estimate from Howie Pfeffer o High Frequency: Off-the-shelf RF power suppy  Collimation system: 5 TeV style collimators Extinction Monitoring  Internal (fast): based on simple telescope, Nick Evans and Paul Rubinov  External (precision) o Structure: Engineering estimate from Larry Bartoszek (Bartoszek Engineering) o Tracking and readout: Andrei Gaponenko, based on experience with ATLAS pixels E.Prebys - DOE CD-1 Review23

Cost Distribution E.Prebys - DOE CD-1 Review24

Cost Summary R. Ray - DOE CD-1 Review25 WBS Element WBS DescriptionM&S Base Cost ($k) M&S % Contingency Labor Base Cost ($k) Labor % Contingency Total 9.0Extinction System (Roll up) Conceptual Design Internal Extinction System External Extinction System Extinction Monitoring

Basis of Estimate E.Prebys - DOE CD-1 Review26 Labor vs. M&S Estimate Type

Summary We have a feasible design to achieve the required level of extinction for the experiment. We have conceptual designs to measure this extinction in the two time regimes required. E.Prebys - DOE CD-1 Review27

BACKUP SLIDES

Ferrite Measurement E.Prebys - DOE CD-1 Review29 Current, A-turnsB, Gauss (start)B, Gauss (end) Max Temperature, C MnZn, 300kHz, 2 plates NiZn, 5.1 MHz, 2 plates (Need 160 G) (Need 10 G)