HYSPEC options for wide angle TOF neutron polarization analysis with polarized 3 He L. Passell, V.J. Ghosh, L.D. Cooley, I. Zaliznyak, S.M. Shapiro, W.J.

Slides:



Advertisements
Similar presentations
Plasma Window Options and Opportunities for Inertial Fusion Applications Leslie Bromberg Ady Herskovitch* MIT Plasma Science and Fusion Center ARIES meeting.
Advertisements

Superconducting Magnet Program S. Gourlay CERN March 11-12, Lawrence Berkeley National Laboratory IR Quad R&D Program LHC IR Upgrade Stephen A.
W. M. Snow Physics Department Indiana University/IUCF EDM collab meeting Monitoring the Cold Neutron Beam (During Experiment) What to measure (fluence.
This material is based upon work supported by the U.S. Department of Energy Office of Science under Cooperative Agreement DE-SC , the State of Michigan.
A Proposal of a Polarized 3 He ++ Ion Source with Penning Ionizer for JINR N.N. Agapov, Yu.N. Filatov, V.V. Fimushkin, L.V. Kutuzova, V.A. Mikhailov, Yu.A.
Using polarized 3 He spin filter at the SNS - Update on current development W.T. Hal Lee Spallation Neutron Source.
Pair Spectrometer Design Optimization Pair Spectrometer Design Optimization A. Somov, Jefferson Lab GlueX Collaboration Meeting September
23 October 2005MICE Meeting at RAL1 MICE Tracker Magnets, 4 K Coolers, and Magnet Coupling during a Quench Michael A. Green Lawrence Berkeley Laboratory.
1 Configuration Development for HIF Final Focus Superconducting Quadrupole Array HIF Final Focus Meeting July 2, 2002 Tom Brown Chang Jun Phil Heitzenroeder.
GlueX Simulations Status Report on CD3 geometry Richard Jones GlueX Collaboration Meeting, Newport News, January 10-12, 2008.
Third International Conference on Frontier Science Villa Mondragone – Monteporzio Catone Physics and Astrophysics in Space June 14, 2004 Mercedes Paniccia.
1 Infrastructure at RAL Iouri Ivaniouchenkov, RAL MICE Collaboration CERN, 29 March 2003.
Managed by UT-Battelle for the Department of Energy Review of NFMCC Studies 1 and 2: Target Support Facilities V.B. Graves Meeting on High Power Targets.
Helium 3 Neutron Precision Polarimetry CHRISTOPHER CRAWFORD, ROEL FLORES, CHRISTOPHER MENARD*, ELISE MARTIN, University of Kentucky *present address: Washington.
HYSPEC Hybrid Spectrometer Instrument Development Team April, 2002 A High Performance Hybrid Spectrometer for the Single Crystal Studies at the Pulsed.
Managed by UT-Battelle for the Department of Energy Current and Future Instrument Development Projects at Oak Ridge Lee Robertson Instrument DevelopmentGroup.
HYSPEC Instrument: Status and Performance M. Hagen Neutron Facilities Development Division, SNS, Oak Ridge National Lab. W.J. Leonhardt and A. Ruga Condensed.
CASIPP Design of Cryogenic Distribution System for CFETR CS model coil Division of Cryogenic Engineering and Technical Institute of Plasma Physics Chinese.
Polarized Beams Using He-3 at the NCNR Triple-Axis Spectrometers Ross Erwin Tom Gentile Wangchun Chen Sarah McKenney.
HPS Test Run Setup Takashi Maruyama SLAC Heavy Photon Search Collaboration Meeting Thomas Jefferson National Accelerator Facility, May 26-27,
1 Overview of the NPDGamma Experiment at the Fundamental Neutron Physics Beamline Geoff Greene UT/ORNL.
CD meeting R.Yamada1 Thoughts on 4CD (4 th Concept Detector) Solenoid System based on Alex Mikhailchenko’s Basic Design Ryuji Yamada October 20,
Experimental Facilities DivisionOak Ridge April 14-16, 2004 Magnetic Interference in the SNS Instrument Hall Wai-Tung Hal Lee Neutron Polarization Scientist.
Ion Mitigation for Laser IFE Optics Ryan Abbott, Jeff Latkowski, Rob Schmitt HAPL Program Workshop Los Angeles, California, June 2, 2004 This work was.
HYSPEC HYSPEC INSTRUMENT DESIGN – OUTLINE  The two “models” considered for HYSPEC – inside & outside (Mark)  A breakdown of the components of the two.
HYSPEC Recent progress and polarization analysis capabilities ORNL: B. Winn, V. Ovidiu Garlea, M. Graves- Brook, Peter Jiang, X. (Tony) Tong BNL: L. Passell,
Polarized 3 He Target for 12 GeV Experiments J. P. Chen, August 15, 2012, JLab  Experiments and requirements  Target performance from previous experiments.
Motivation Polarized 3 He gas target Solenoid design and test 3 He feasibility test Summary and outlook Johannes Gutenberg-Universit ä t Mainz Institut.
Can Multipole Magnetic Fields Play a Useful Role in Transporting, Polarizing and Focusing Neutron Beams on Small Samples? V. J. Ghosh A.U. Luccio L. Passell.
Managed by UT-Battelle for the Department of Energy Polarized 3 He Filling Stations Xin Tong (Tony) Instrument Development Group Neutron Facilities Development.
Normalization of the NPDGamma Experimental Data F. Simmons, C. Crawford University of Kentucky, for the NPDGamma collaboration Background: NPDγ Experiment.
Beam Polarimetry Matthew Musgrave NPDGamma Collaboration Meeting Oak Ridge National Laboratory Oct. 15, 2010.
Applications of polarized neutrons V.R. Skoy Frank Laboratory of Neutron Physics, Joint Institute for Nuclear Research Dubna, Moscow Region, Russia.
HYSPEC IDT HYSPEC - Hybrid Spectrometer for the Single Crystal and Polarized Neutron Studies at the SNS Steve Shapiro and Igor Zaliznyak Center for Neutron.
The HYSPEC Polarized Beam Spectrometer Mark Hagen, Barry Winn, Melissa Graves-Brook Neutron Scattering Science Division David Anderson, Xin Tony Tong Neutron.
HYSPEC HYSPEC: A High Performance Polarized Beam Hybrid Spectrometer at the SNS Beamline 14B I.Zaliznyak 1, S. Shapiro 1, L. Passell 1, V. Ghosh 1, W.
CEA DSM Dapnia DIRAC-Phase-1 Annual Report meeting Status of the R3B-GLAD Magnet DIRAC-Phase-1 Annual Report Meeting 26 September 2006 Bernard Gastineau.
HYSPEC IDT Polarized Beam Operation of the Hybrid Spectrometer at the pulsed Spallation Neutron Source. Outline HYSPEC: project timeline and place in the.
1 BROOKHAVEN SCIENCE ASSOCIATES NSLS-II Overview Satoshi Ozaki Director, Accelerator Systems Division NSLS-II Project March 27, 2007.
The NCNR Spin-Polarized Triple-Axis Spectrometer (SPINS) The SPINS instrument is located at the heart of the cold neutron guide hall of the NIST Center.
1 Possibility to obtain a polarized hydrogen molecular target Dmitriy Toporkov Budker Institute of Nuclear Physics Novosibirsk, Russia XIV International.
Polarization Measurement for Npdgamma at the SNS M. Jon Dadras.
Neutron Scattering Group February, 2001 A High Performance Instrument for the Single Crystal Spectroscopy at the Pulsed SNS. n What is the spectrometer.
A New High Intensity Cold Neutron Spectrometer at NIST J. A. Rodriguez 1,3, P. Brand 3, C. Broholm 2,3, J.C. Cook 3, Z. Huang 3, P. Hundertmark 3, J. Lynn.
EDMEDM LANL Review of EDM Cost and Schedule Jan Boissevain, P-25 February 11, 2005, Los Alamos National Laboratory EDM Reference Design Tour of the Reference.
CAPABILITIES Desire to measure lattice and spin dynamics in small single crystals:  Need high flux at sample position.  Low background Science Needs:
EDMEDM EDM Collaboration Meeting 6-05 Jan Boissevain, P-25 June 20, 2005, Los Alamos National Laboratory EDM Reference Design.
HYSPEC IDT Polarized Beam Mode for the Hybrid Spectrometer (HYSPEC) at the Spallation Neutron Source. Outline BNL’s HYSPEC project and its place in the.
HYSPEC IDT Introduction to HYSPEC: Overview of the Conceptual Design and Top Level Specifications. Outline Overview of the HYSPEC layout and principal.
Neutron Scattering Group March, 2001 A High Performance Hybrid Spectrometer for the Single Crystal Spectroscopy at the Pulsed SNS  Scientific case and.
HYSPEC IDT Options for polarization analysis with 3 He for the Hybrid Spectrometer (HYSPEC) L. Passell, V.J. Ghosh, I. Zaliznyak, S. Shapiro, W. Leonhardt,
HYSPEC IDT HYSPEC: Our Instrument at the Spallation Neutron Source. Outline Spallation Neutron Source (SNS) and the BNL Overview of the SNS instrument.
Moving the NPDGamma Experiment to the SNS FnPB Christopher Crawford University of Kentucky overview of NPDGamma transition to the SNS expected.
HYSPEC IDT Polarized Beam Mode for the Hybrid Spectrometer (HYSPEC) at the Spallation Neutron Source. Outline Polarization analysis and the HYSPEC place.
Present status of production target and Room design Takashi Hashimoto, IBS/RISP 2015, February.
Magnet R&D for Large Volume Magnetization A.V. Zlobin Fermilab Fifth IDS-NF Plenary Meeting 8-10 April 2010 at Fermilab.
Thomas Jefferson National Accelerator Facility Operated by the Southeastern Universities Research Association for the U.S. Depart. Of Energy The Department.
CW Cryomodules for Project X Yuriy Orlov, Tom Nicol, and Tom Peterson Cryomodules for Project X, 14 June 2013Page 1.
Implication of gamma-gamma on 14mr tunnels discussion (questions for discussion with WG-C and WG-A) Valery Telnov Budker INP IRENG07, Sept.19, 2007, SLAC.
October, 2001 Hybrid Spectrometer for Single Crystal Studies at the Pulsed SNS: an update. n Principal features of the proposed hybrid spectrometer. n.
CLAS12 Longitudinally Polarized Target R&D Update CLAS Collaboration, October 20, 2015 Chris Keith.
Christos Lamboudis HEP April. Athens Study of MDT response to neutrons and possible ageing effects Do we really need to worry about neutrons? Do.
The ESS Target Station Eric Pitcher Head of Target Division February 19, 2016.
T5.2: Harmonization - Material and Component Reference
The NPDGamma Experiment at the SNS FnPB
DEMONSTRATION EXPERIMENTS
MIRACLES budget: Summary of the 3 configurations
Budker Institute of Nuclear Physics,
IR Beam Transport Status
Superconducting Magnets
Presentation transcript:

HYSPEC options for wide angle TOF neutron polarization analysis with polarized 3 He L. Passell, V.J. Ghosh, L.D. Cooley, I. Zaliznyak, S.M. Shapiro, W.J. Leonhardt (BNL) T.R. Gentile, W.C. Chen (NIST), M. Hagen, W.T. Lee (SNS, ORNL) Brookhaven National Laboratory is managed by Brookhaven Science Associates for the U.S. Department of Energy. For more information on HYSPEC please see the website Passive persistent-mode superconducting magnetic shield Room temperarature cavity 4K dewar 3 He cell Conventional magnetic shielding Material Mechanical properties Field that can be shielded (Gauss) High grade μ metal annealed ~10 Fe0.2Ni0.8 susceptible to heat and stress Mid-grade μ metal partly-annealed or not annealed ~10 FexNi(1-x) Fe0.97Si0.03 ~100 Gaps or windows would be required in the for beam entrance and exit Passive, persistent-mode, superconducting magnetic shielding Superconductor Density properties Field that can be shielded (g/cm3) by 1 mm thick foil (Tesla) Nb 8.5 good strength and rigidity ~0.2 electron beam weldable Al clad Nb0.37Ti good strength and rigidity ~1.0 Al clad Nb 3 Sn 8.9very brittle ? No entrance and exit windows will be required – the beam will be transmitted through the shielding. Foil thickness is limited to 1mm to allow for adequate transmission. Polarized 3He Neutron polarization analyzer Attractive Features  Efficient thermal neutron polarization analyzer at 75 % 3 He polarization. Promise of even better efficiency if 3 He polarization can be pushed into the 80-90% range.  Operates over a neutron energy range extending from sub-thermal to epi-thermal.  Analyzer efficiency can be optimized at any given neutron energy by changing the 3He gas pressure.  Does not require a highly collimated incident neutron beam.  Potential to cover the entire active area of a wide- angular-acceptance TOF detector. Design Constraints  Design issues relating to influence of guide and holding field configurations on incident neutron beam polarization  Wide angular acceptance applications require substantial volumes of polarized 3He gas that will have to be supplied by a central optical pumping facility  Wide angular acceptance applications require the fabrication of large-volume, kidney-shaped gas cells which must operate as both vacuum and pressure vessels  Cell lifetime sensitive to holding magnetic field uniformity. Necessary to screen stray magnetic fields and provide field uniformity  H/H<10-4/cm over cell volume. Also sensitive to power supply and field coil vibration-induced fluctuations  Design and fabrication issues relating to influence of cell wall material on cell lifetimes  Design issues relating to the possibility of in-situ optical pumping and to the choice of optical pumping method  Design issues relating to quick, easy and convenient interchange of gas cells Small sample field Hs< 0.1 T Both sample and 3 He cell fields are provided by the same pair of Helmhotz coils. An arrangement of three pairs of orthogonal coils (so called PASTIS geometry) is possible. Ref: J.A. Stride, K.A. Andersen, A.P. Murani, H. Mutka, H.S. Schober, and J.R. Stewart - Physica B356, 146 (2005) Intermediate sample field Hs ~ 1-3 T Sample fields generated by 1-3 T magnets 3 He cell field by separate Al-wire solenoid Magnetic shielding will be required to screen the cell solenoid from the sample magnet field High sample field Hs ~ T Sample field provided by T split pair superconducting magnet A CRYOPAD-like superconducting magnetic shielding is required to screen out the 0.5-1T fringe field of the sample magnet. A passive, persistent-mode superconducting sleeve will both screen the fringe field from the sample magnet and provide the holding field for the 3 He cell. Ref: J. Dreyer, L.P. Regnault, E. Bourgeat-Lami, E. Lelievre-Berna, S. Pujol, F. Thomas, M. Thomas, F. Tasset - Nuclear Instruments and Methods A449, 638 (2000) On-line optical pumping There are two potentially viable approaches to maintaining near-constant gas polarization in 3He cells: in-situ optical pumping batch gas transfer from an externally pumped cell to the working cell. Continuous in-situ optical pumping using the spin exchange optical pumping (SEOP) method can be used for the low sample field configuration. The cell will have to be heated to about 200 C to maintain the Rb vapor pressure needed for efficient Rb-3He spin exchange. For a PASTIS-type arrangement of three orthogonal Helmholtz coil pairs, however, continuous in- situ pumping would be more of a challenge because the circularly polarized pumping light has to enter the cell parallel to the holding field which, in this case, would shift from one direction to another depending on what is regarded as the most experimentally advantageous sample field orientation. Batch gas transfer from an externally pumped cell connected via capillaries to the working cell would also work for the low sample field configuration. In this case the approach would be a closed loop arrangement involving either metastable exchange optical pumping (MEOP) or SEOP. MEOP is the faster of the two methods but the gas has to be optically pumped at low pressure and then compressed and stored under pressure for periodic exchange with gas in the working cell. At the present time MEOP looks to be the less attractive alternative for batch transfer in part because compressors that can compress the gas without significant loss of polarization are are still in the development stage and in part because they are almost certain to be costly and require maintenance on a regular schedule. SEOP, on the other hand, although slower, is not constrained to low pressures and gas exchange could probably be accomplished without any mechanical components other than the valves controlling the gas flow and would be comparatively maintenance-free. But whatever the choice of pumping method, issues relating to providing the necessary holding field uniformity in the connecting capillaries will need to be addressed. Given the more demanding nature of the intermediate and high sample field cases, it is likely that 3He polarization analyzers, if employed, will, at least initially, be optically pumped off- line and manually interchanged as the need arises. On-line optical pumping by either the in-situ or batch method, although not ruled-out, would require a significant developmental effort because of the geometrical constraints imposed by cells inside either solenoids or hollow-center dewars. HYSPEC PARAMETERS Beamline: 14B at the Spallation Neutron Source, ORNL Moderator: Cryogenic coupled H2 moderator Moderator-monochromator distance 35-40m Monochromator-sample distance m Sample-detector distance 4.5m Incident energy range: 3.6meV < EI < 90meV Incident energy resolution: ΔEI/EI ~ 1.5% Final energy resolution: ΔEF/EF ~ 5% - 8% Wavevector transfer range: ~0.1Å-1 < Q < 8Å-1 A large beam (150mm x 40mm) from the SNS Moderator is compressed (focused) down to a 2cm by 2cm sample area using (focusing) Bragg crystal optics. A curved supermirror guide is used to lower the background by going out of the line of sight of the source. There is a large area around the sample for specialized and/or bulky sample environment equipment. Magnetic fields in the vicinity of the OXFORD 15 Tesla superconducting magnet