The Current T2K Beam Window Design and Upgrade Potential Oxford-Princeton Targetry Workshop Princeton, Nov 2008 Matt Rooney.

Slides:



Advertisements
Similar presentations
Matt Rooney RAL The T2K Beam Window Matt Rooney Rutherford Appleton Laboratory BENE November 2006.
Advertisements

EUROnu Beam Window Studies Stress and Cooling Analysis Matt Rooney, Tristan Davenne, Chris Densham Strasbourg June 2010.
SNS Experimental FacilitiesOak Ridge Target Systems for the Spallation Neutron Source Presented by John R. Haines at the High-Power Targetry for Future.
UKNFWG 12 January 2005Chris Densham Shock Waves in Solid Targets Preliminary Calculations.
Mike Fitton Engineering Analysis Group Design and Computational Fluid Dynamic analysis of the T2K Target Neutrino Beams and Instrumentation 6th September.
Michael Butzek, Jörg Wolters, Bernhard Laatsch Mitglied der Helmholtz-Gemeinschaft Proton beam window for High Power Target Application 4th.
R.Valbuena NBI March 2002 CNGS Decay Pipe Entrance Window Structural and Thermal Analysis A.Benechet, P.Cupial, R.Valbuena CERN-EST-ME.
Studies of solid high-power targets Goran Skoro University of Sheffield HPT Meeting May 01 – 02, 2008 Oxford, UK.
Status of T2K Target 2 nd Oxford-Princeton High-Power Target Workshop 6-7 th November 2008 Mike Fitton RAL.
KT McDonald Muon Collider 2011 June 28, The Target System Baseline K. McDonald Princeton U. (June 28, 2011) Muon Collider 2011 Telluride, CO More.
T2K Target & Secondary Beamline - progress towards a neutrino Superbeam? Chris Densham.
The JPARC Neutrino Target
FETS-HIPSTER (Front End Test Stand – High Intensity Proton Source for Testing Effects of Radiation) Proposal for a new high-intensity proton irradiation.
Radiation Cooling of the ILC positron target LCWS 2014, Belgrade, Serbia 7 th October 2014 Sabine Riemann, DESY, Peter Sievers, CERN/ESS, Andriy Ushakov,
Vacuum windows at JPARC Contents Introduction Vacuum windows at hadron beam line Helium gas cooling Vacuum windows at neutrino beam line primitive discussion.
A powder jet target for a Neutrino Factory Ottone Caretta, Chris Densham (RAL), Tom Davies (Exeter University), Richard Woods (Gericke Ltd)
Proton Accelerators for Science and Innovation Workshop at Fermilab
KT McDonald MAP Spring Meeting May 30, Target System Concept for a Muon Collider/Neutrino Factory K.T. McDonald Princeton University (May 28, 2014)
1 cm diameter tungsten target Goran Skoro University of Sheffield.
Si Nanocrystaline Diamond Foil Hibachi Window Testing and Development Background and Theory Pulsed Power System Electron Beam Electron Transmission Window.
BNL Neutrino Long Baseline Neutrino Initiative N. Simos, BNL NWG Baseline = 2540 Km Homestake.
Horn design for the CERN to Fréjus neutrino Super Beam Nikolas Vassilopoulos IPHC/CNRS.
Design of electrostatic septum for slow extraction from J-PARC main ring 2005, March 2nd ICFA septa workshop 2005 Acc. Lab., KEK M. Tomizawa, Y. Arakaki,
Thermomechanical characterization of candidate materials for solid high power targets Goran Skoro, R. Bennett, R. Edgecock 6 November 2012 UKNF Target.
T2K Secondary Beamline – Status of RAL Contributions Chris Densham, Mike Fitton, Vishal Francis, Matt Rooney, Mike Woodward, Martin Baldwin, Dave Wark.
NuMI 2 nd High Power Targetry Workshop October 2005 NuMI Target Status and Future Pat Hurh Page 1 NuMI Target Status and Design Study for Proton Driver.
Tbilisi, 10/07/2014V. Carassiti, P. Lenisa 1. Tbilisi, 10/07/2014V. Carassiti, P. Lenisa2.
Future upgrade of the neutrino beam-line for multi-MW beam 5 th Hyper-Kamiokande open Vancouver July Yuichi Oyama (KEK) (for T2K neutrino.
1 Thermo-Mechanical Analysis of ISIS TS2 Spallation Target Dan Wilcox High Power Targets Group, Rutherford Appleton Laboratory 5th High Power Targetry.
Stress and Cool-down Analysis Yun HE MLC Internal Review 9/5/2012Yun HE, MLC Internal Review1.
BNL E951 BEAM WINDOW EXPERIENCE Nicholas Simos, PhD, PE Neutrino Working Group Brookhaven National Laboratory.
1 Status of Neutrino Beamline Construction K. Nishikawa IPNS, KEK 2006 . 12 . 4.
Consideration of Baffle cooling scheme
2009/1/16-18 ILD09 Seoul 1 Notes for ILD Beam Pipe (Technical Aspect) Y. Suetsugu, KEK Parasitic loss Vacuum pressure profile Some comments for beam pipe.
1 Target Station Design Dan Wilcox High Power Targets Group, Rutherford Appleton Laboratory EuroNu Annual Meeting 2012.
Calculation of Beam loss on foil septa C. Pai Brookhaven National Laboratory Collider-Accelerator Department
UKNF 12 January 2005 Target Studies J R J Bennett RAL.
THERMAL ANALYSIS SUMMARY FOR LBNE-BLIP IRRADIATION TESTS P. Hurh 2/19/2010.
Collimation for the Linear Collider 15 th Feb 2005 Chris Densham RAL Elastic Stress Waves in candidate Solid Targets for a Neutrino Factory.
56 MHz SRF Cavity Thermal Analysis and Vacuum Chamber Strength C. Pai
Investigation of a “Pencil Shaped” Solid Target Peter Loveridge, Mike Fitton, Ottone Caretta High Power Targets Group Rutherford Appleton Laboratory, UK.
Superbeam target work at RAL Work by: Ottone Caretta, Tristan Davenne, Peter Loveridge, Chris Densham, Mike Fitton, Matt Rooney (RAL) EURONu collaborators:
BENE/CARE Frascati November 2006 CJ Densham CCLRC Rutherford Appleton Laboratory Solid target studies in UK for T2K and for a neutrino factory JRJ.
SPL-SB and NF Beam Window Studies Stress Analysis Matt Rooney, Tristan Davenne, Chris Densham March 2010.
Parameters of the NF Target Proton Beam pulsed10-50 Hz pulse length1-2  s energy 2-30 GeV average power ~4 MW Target (not a stopping target) mean power.
Mitglied der Helmholtz-Gemeinschaft Jörg Wolters, Michael Butzek Focused Cross Flow LBE Target for ESS 4th HPTW, Malmö, 3 May 2011.
1 BROOKHAVEN SCIENCE ASSOCIATES N. Simos, BNL EUROnu-IDS Target Meeting December 15-18, 2008 Superbeam Horn-Target Integration.
ESSnuSB Target Chris Densham, Tristan Davenne STFC Rutherford Appleton Laboratory 26 th May 2014.
Engineering studies for CN2PY secondary beam. LAGUNA-LBNO General Helsinki, 26/08/20141 F. Sanchez Galan (CERN) on behalf of the CERN Secondary.
Engineering studies for the Conceptual design of the LBNO Facility 1 F. Sanchez Galan (CERN) on behalf of the CERN Secondary Beam Working Group, With contributions.
UK contribution to LBNF/DUNE beam and target system Chris Densham, Tristan Davenne, Otto Caretta, Mike Fitton, Peter Loveridge, Joe O’Dell, Andrew Atherton,
High Power Target Experience with T2K Chris Densham T2K Beamline Collaboration including RAL / KEK / Kyoto.
Design for a 2 MW graphite target for a neutrino beam Jim Hylen Accelerator Physics and Technology Workshop for Project X November 12-13, 2007.
T2K Target status PASI Meeting Fermilab 11 th November Chris Densham STFC Rutherford Appleton Laboratory On behalf of the T2K beam collaboration.
Chris Densham Figures of Merit for target design for neutrons, neutrinos… Chris Densham Rutherford Appleton Laboratory.
704 MHz cavity design based on 704MHZ_v7.stp C. Pai
KT McDonald MAP Spring Meeting May 30, Target System Concept for a Muon Collider/Neutrino Factory K.T. McDonald Princeton University (May 28, 2014)
325 MHz Superconducting Spoke Cavity Coupler status. T. Khabiboulline Power Coupler design for Superconducting Spoke cavities. Originally.
Chiara Di Paolo EN-STI-TCD Material Choice for the Vacuum Window at the Exit of BTM.
Irradiated T2K Ti alloy materials test plans
ISIS TS1 Project: Target Design and Analysis
Stress and cool-down analysis of the cryomodule
P. Sievers/CERN. A. Ushakov/Univ. Hamburg. S. Riemann/DESY-Zeuthen.
Peter Loveridge High Power Targets Group
Beam Window Studies for Superbeams
Parameters of the NF Target
EUROnu Beam Window Studies Stress and Cooling Analysis
Superbeam Horn-Target Integration
SPL-SB and NF Beam Window Studies Stress Analysis
Presentation transcript:

The Current T2K Beam Window Design and Upgrade Potential Oxford-Princeton Targetry Workshop Princeton, Nov 2008 Matt Rooney

T2K Target Station Proton beam Focusing horns Target Window

Beam window design overview

Exploded assembly view Side plates -Provide a firm support for the beam window and guidance during installation Top plate - Used for inserting and removing window - Protects pillow seals and mating flanges - Provides a connection point for services Inflatable seals -Seal helium vessel and beam line Ti-6Al-4V beam window

Ti-6Al-4V Beam window - Some difficulties with post-machining and post-weld distortion – a common problem with Ti-6Al-4V. - E-beam welding conducted by Culham UKAEA Special Techniques Group.

Helium cooling He in He out Upstream He gap Downstream Helium velocity ≈ 5 m/s Heat transfer coefficient ≈ 150 W/m2K

Helium flow grooves He inHe out

Inflatable seals Picture courtesy of Y. Miyake and S. Makimura (KEK) Picture courtesy of PSI PSI KEK Muon Group

Pillow seals outer diaphragm inner diaphragm bellows Pictures courtesy of Y. Miyake (KEK) pressure line vacuum line ~ 200 mm Window – side view Section view KEK Muon Group pillow seal

Seal and mating flange Seal foils (surface roughness, Ra = µm, Rt = µm) Polished flange (surface roughness, Ra = µm) Seals manufactured by UHV Design in UK. Developed from similar design at KEK (via Oak Ridge via PSI).

Assembled Window

Remote Handling

Remote handling Monitor Chamber (Canada) Target Station (Japan)

Remote installation

Stress analysis and upgrade potential

Beam properties MW beam power x protons per pulse - Gaussian profile with 4 mm rad rms beam spot - 5 µs pulse = 8 x 58ns bunches - 1 pulse every 2 seconds at 30 GeV Energy deposited in window with distance from beam centre

ANSYS Static Stress Results UTS Ti-6Al-4V ≈ 1GPa NOTE: 100W/m 2 K heat transfer coefficient applied to internal wall

Transient thermal stress over multiple pulses Stress waves developing over pulse

Ti-6Al-4V – the good news Fatigue strength 0.75 MW Safety factor of 4-5 Yield strength

Ti-6Al-4V – the bad news - reduction in strength at elevated temperatures

T2K beam window upgrade potential Increased number of protons per pulse would push the limits of Ti-6Al-4V MW pulse ~ 100 MPa shock stress 3.0 MW pulse ~ 500 MPa shock stress Room temp yield strength Ti-6Al-4V = 900 MPa. But higher power could also be achieved through a higher beam frequency.

Stress Analysis Overview - Long term survival of window looks likely for 0.75 MW beam. - Beam upgrades with increased PPP would test the limits of the material. - Potential for power upgrades more promising if number of pulses is increased. - Radiation damage then becomes the dominant factor in determining live in service.

Fin