SlideShare une entreprise Scribd logo
1  sur  64
FELIX QVI POTVIT RERVM COGNOSCERE CAVSAS Some future accelerator scenarios at RAL David Findlay Accelerator Division ISIS Department Rutherford Appleton Laboratory
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
ISIS upgrades not necessarily  accelerator  upgrades
Source strength × Reliability × Instrumentation × Innovation × Investment × Support facilities × Support staff × Cost effectiveness × User community 10 × 1 × 1 × 1 × 1 × 1 × 1 × 1 × 1 2 × 1 × 1.26 × 1.26 × 1.26 × 1.26 × 1.26 × 1.26 × 1.26 1 × 1 × 1.39 × 1.39 × 1.39 × 1.39 × 1.39 × 1.39 × 1.39
[object Object],[object Object],[object Object],Reflector Moderators Primary target Protons Moderator
[object Object],[object Object],[object Object],[object Object],[object Object]
ISIS at present
Second Target Station upgrade No power upgrade, but 18 more instruments (7 on Day 1)
ISIS at present
New ~180 MeV linac ½  MW upgrade —  extra power by increasing current Present 70 MeV linac
 
 
 
Higher injection energy   space charge forces less of a problem Should be able to inject and accelerate higher currents ~300 µA at 70 MeV (with 2RF upgrade) ~600 µA at 180 MeV? 800 MeV × 600 µA = 480 kW ≈ 0.5 MW Need detailed beam dynamics calculations to confirm — ASTeC Intense Beams Group
Proton beam Individual proton in beam Space charge forces
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
 
Beam loss Why chopper? Ion source Linac Ring Bunching Also to minimise RF transients and control beam intensity
No beam loss Ion source Linac Ring Bunching With chopper — gaps in beam
Chopper performance required DC accelerator RF accelerator ns – µs spacing ESS:  280 MHz, bunch spacing 3.57 ns Switch between bunches Partially chopped bunches a problem!  Tune shifts! Good Bad On Off
[object Object],[object Object],[object Object],Slow transmission line Lumped line — thermally hardened 0 1 0 1 2 ns 8 ns Up to 100 µs
Close-coupled chopper module 1145 mm Slow switch Fast switch Beam Buncher cavity Buncher cavity
1 MW upgrade Extra power by increasing energy
Transmutation and energy production with high power accelerators, G. P. Lawrence, Los Alamos National Laboratory, http://epaper.kek.jp/p95/ARTICLES/FPD/FPD03.PDF Proton range in tungsten target from integrating stopping power
 
1 MW upgrade 800 MeV synch. TS1 TS2 3 GeV synch. TS3 (+ 8 GeV) µ
Circumference of 3 GeV synchrotron = 3 × circumference of 800 MeV synchrotron 800 MeV 26 m radius 2  –  3 µC per bunch 3 GeV 78 m radius Can “fit in” three times as much charge
[object Object],[object Object],[object Object],[object Object]
 
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
 
 
 
 
[object Object],[object Object],[object Object],[object Object],[object Object]
2½ & 5 MW upgrades
2½ and/or 5 MW upgrades
2½ MW upgrade TS3 µ 180 MeV linac 2 × 1.2 GeV synchrotrons 39 m radius 1 × 3 GeV synchrotron 78 m radius 50 pps
Circumference of 3 GeV synchrotron = 2 × circumference of 1.2 GeV synchrotron 3 GeV 78 m radius 1.2 GeV 39 m radius 1.2 GeV 39 m radius
5 MW upgrade TS3 µ 180 MeV linac 2 × 1.2 GeV synchrotrons 39 m radius 2 × 6 GeV synchrotron 78 m radius 2 × 25 pps
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Want intense beam of neutrinos — but can’t accelerate neutrinos (no charge) Can get neutrinos from muons If muons decay in flight, neutrinos tend to go in direction of muons   So get intense beams of neutrinos by accelerating intense beam of muons — but no natural source of muons
p +  A Z     n,   , … (pion production)          +   (pion     muon + neutrino)       e +    +   (muon     electron + 2 × neutrinos) ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
p +  A Z     n,   , … (pion production)          +   (pion     muon + neutrino)       e +    +   (muon     electron + 2 × neutrinos) KARMEN experiment at ISIS Electron anti-neutrinos not produced by ISIS, so their appearance would be evidence for neutrino oscillations and thus evidence for neutrino mass  ’ s in all directions — KARMEN close to target
Muon  Storage  Ring High current H –  source Cooling Muon Acceleration ‘ near’ detector (1000–3000km) ‘ far’ detector (5000–8000km) ‘ local’  detector Proton  Driver Target Capture
UK Neutrino Factory
 
FNAL BNL CERN GSI CEA INFN JHF DUBNA RAL? Neutrino experiment
[object Object],[object Object],[object Object]
Protons     pions     muons http://puhep1.princeton.edu/mumu/target/targettrans15.pdf
Muons produced with large energy and angular spreads — pretty ghastly source for an accelerator “ Phase rotation” in energy-time phase space to selectively speed up slow muons — several different schemes, all need RF  “ Cooling” to reduce transverse motion but not longitudinal motion — reduce longitud. and transv. energy in absorber — put back longitud. only — MICE experiment at RAL
Particle with transverse momentum After losing energy in absorber After acceleration in RF cavity Muon Ionisation Cooling Experiment
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
50 GeV muon recirculating superconducting linac ISIS synchrotron
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object]
 
[object Object],[object Object],[object Object],[object Object]

Contenu connexe

Tendances

System for reception and transmission of telluic waves by eric dollard
System for reception and transmission of telluic waves by eric dollardSystem for reception and transmission of telluic waves by eric dollard
System for reception and transmission of telluic waves by eric dollard
PublicLeaker
 
Geiger_Mode_Avalanche_Photodiode_self-quenching
Geiger_Mode_Avalanche_Photodiode_self-quenchingGeiger_Mode_Avalanche_Photodiode_self-quenching
Geiger_Mode_Avalanche_Photodiode_self-quenching
Evgeny Chernyavski
 
N 3-lecture notes-antennas-dr.serkanaksoy
N 3-lecture notes-antennas-dr.serkanaksoyN 3-lecture notes-antennas-dr.serkanaksoy
N 3-lecture notes-antennas-dr.serkanaksoy
15010192
 
N 5-antenna fandamentals-f13
N 5-antenna fandamentals-f13N 5-antenna fandamentals-f13
N 5-antenna fandamentals-f13
15010192
 

Tendances (18)

System for reception and transmission of telluic waves by eric dollard
System for reception and transmission of telluic waves by eric dollardSystem for reception and transmission of telluic waves by eric dollard
System for reception and transmission of telluic waves by eric dollard
 
FT NMR
FT NMRFT NMR
FT NMR
 
Non linear optics and SHG
Non linear optics and SHGNon linear optics and SHG
Non linear optics and SHG
 
ESS-Bilbao Initiative Workshop. PSI experience with high power beam handling,...
ESS-Bilbao Initiative Workshop. PSI experience with high power beam handling,...ESS-Bilbao Initiative Workshop. PSI experience with high power beam handling,...
ESS-Bilbao Initiative Workshop. PSI experience with high power beam handling,...
 
Q switching for giant pulses in laser
Q switching for giant pulses in laserQ switching for giant pulses in laser
Q switching for giant pulses in laser
 
Parra - Ultrashort Pulse (USP) Laser Matter Interactions - Spring Review 2012
Parra - Ultrashort Pulse (USP) Laser Matter Interactions - Spring Review 2012Parra - Ultrashort Pulse (USP) Laser Matter Interactions - Spring Review 2012
Parra - Ultrashort Pulse (USP) Laser Matter Interactions - Spring Review 2012
 
Design of Negative Resistance Oscillator with Rocord Low Phase Noise
Design of Negative Resistance Oscillator with Rocord Low Phase NoiseDesign of Negative Resistance Oscillator with Rocord Low Phase Noise
Design of Negative Resistance Oscillator with Rocord Low Phase Noise
 
Engineers australia 2019
Engineers australia 2019Engineers australia 2019
Engineers australia 2019
 
Mri image quality gamal mahdaly
Mri image quality gamal mahdalyMri image quality gamal mahdaly
Mri image quality gamal mahdaly
 
Dispersive & FTIR
Dispersive & FTIRDispersive & FTIR
Dispersive & FTIR
 
Investigating a Simulated Model of 2.5 GHz 64 Channel 140 kmDWDM System Using...
Investigating a Simulated Model of 2.5 GHz 64 Channel 140 kmDWDM System Using...Investigating a Simulated Model of 2.5 GHz 64 Channel 140 kmDWDM System Using...
Investigating a Simulated Model of 2.5 GHz 64 Channel 140 kmDWDM System Using...
 
Wavelength locked 914nm semiconductor laser
Wavelength locked 914nm semiconductor laserWavelength locked 914nm semiconductor laser
Wavelength locked 914nm semiconductor laser
 
Physics e
Physics ePhysics e
Physics e
 
Terahertz spectroscopy
Terahertz spectroscopyTerahertz spectroscopy
Terahertz spectroscopy
 
Geiger_Mode_Avalanche_Photodiode_self-quenching
Geiger_Mode_Avalanche_Photodiode_self-quenchingGeiger_Mode_Avalanche_Photodiode_self-quenching
Geiger_Mode_Avalanche_Photodiode_self-quenching
 
Nuclear imaging
Nuclear imagingNuclear imaging
Nuclear imaging
 
N 3-lecture notes-antennas-dr.serkanaksoy
N 3-lecture notes-antennas-dr.serkanaksoyN 3-lecture notes-antennas-dr.serkanaksoy
N 3-lecture notes-antennas-dr.serkanaksoy
 
N 5-antenna fandamentals-f13
N 5-antenna fandamentals-f13N 5-antenna fandamentals-f13
N 5-antenna fandamentals-f13
 

Similaire à Future accelerator scenarios

Ippen nes osa 9-15-11
Ippen nes osa 9-15-11Ippen nes osa 9-15-11
Ippen nes osa 9-15-11
nishmoh
 
Romiya_HR_presenetation
Romiya_HR_presenetationRomiya_HR_presenetation
Romiya_HR_presenetation
Romiya Bose
 
Wireless power transmissiusing microwave
Wireless  power  transmissiusing microwaveWireless  power  transmissiusing microwave
Wireless power transmissiusing microwave
Debarun Sengupta
 
Radar transmitter 4 (1)
Radar transmitter 4 (1)Radar transmitter 4 (1)
Radar transmitter 4 (1)
Ritesh Goel
 
Ldb Convergenze Parallele_sorba_01
Ldb Convergenze Parallele_sorba_01Ldb Convergenze Parallele_sorba_01
Ldb Convergenze Parallele_sorba_01
laboratoridalbasso
 

Similaire à Future accelerator scenarios (20)

Serena barbanotti INFN milano
Serena barbanotti INFN milanoSerena barbanotti INFN milano
Serena barbanotti INFN milano
 
M1 accelerators
M1 acceleratorsM1 accelerators
M1 accelerators
 
Cmw Isis Synch Talk
Cmw Isis Synch TalkCmw Isis Synch Talk
Cmw Isis Synch Talk
 
Short introduction to CLIC and CTF3
Short introduction to CLIC and CTF3Short introduction to CLIC and CTF3
Short introduction to CLIC and CTF3
 
NMR SPECTROSCOPY.pptx
NMR SPECTROSCOPY.pptxNMR SPECTROSCOPY.pptx
NMR SPECTROSCOPY.pptx
 
Radar 2009 a 17 transmitters and receivers
Radar 2009 a 17 transmitters and receiversRadar 2009 a 17 transmitters and receivers
Radar 2009 a 17 transmitters and receivers
 
Ippen nes osa 9-15-11
Ippen nes osa 9-15-11Ippen nes osa 9-15-11
Ippen nes osa 9-15-11
 
Romiya_HR_presenetation
Romiya_HR_presenetationRomiya_HR_presenetation
Romiya_HR_presenetation
 
Attd Devices
Attd DevicesAttd Devices
Attd Devices
 
Wireless power transmissiusing microwave
Wireless  power  transmissiusing microwaveWireless  power  transmissiusing microwave
Wireless power transmissiusing microwave
 
740 howe
740 howe740 howe
740 howe
 
Antimatter drivensail
Antimatter drivensailAntimatter drivensail
Antimatter drivensail
 
nmr spectroscopy
nmr spectroscopynmr spectroscopy
nmr spectroscopy
 
The plasmamagnet
The plasmamagnetThe plasmamagnet
The plasmamagnet
 
J-PARC
J-PARCJ-PARC
J-PARC
 
Laser drivenplasma
Laser drivenplasmaLaser drivenplasma
Laser drivenplasma
 
PhD Seminar David Dahan 2005
PhD Seminar David Dahan 2005PhD Seminar David Dahan 2005
PhD Seminar David Dahan 2005
 
Radar transmitter 4 (1)
Radar transmitter 4 (1)Radar transmitter 4 (1)
Radar transmitter 4 (1)
 
Types of klystron Amplifier
Types of klystron AmplifierTypes of klystron Amplifier
Types of klystron Amplifier
 
Ldb Convergenze Parallele_sorba_01
Ldb Convergenze Parallele_sorba_01Ldb Convergenze Parallele_sorba_01
Ldb Convergenze Parallele_sorba_01
 

Plus de ESS BILBAO

Plus de ESS BILBAO (20)

22 05 09 El Economista
22 05 09   El Economista22 05 09   El Economista
22 05 09 El Economista
 
ESS-Bilbao Initiative Workshop. SNS Studies towards a rotating solid target.
ESS-Bilbao Initiative Workshop. SNS Studies towards a rotating solid target.ESS-Bilbao Initiative Workshop. SNS Studies towards a rotating solid target.
ESS-Bilbao Initiative Workshop. SNS Studies towards a rotating solid target.
 
ESS-Bilbao Initiative Workshop. Overview of cryo-modules for proton accelerators
ESS-Bilbao Initiative Workshop. Overview of cryo-modules for proton acceleratorsESS-Bilbao Initiative Workshop. Overview of cryo-modules for proton accelerators
ESS-Bilbao Initiative Workshop. Overview of cryo-modules for proton accelerators
 
ESS-Bilbao Initiative Workshop. Pulse forming devices for high duty factor op...
ESS-Bilbao Initiative Workshop. Pulse forming devices for high duty factor op...ESS-Bilbao Initiative Workshop. Pulse forming devices for high duty factor op...
ESS-Bilbao Initiative Workshop. Pulse forming devices for high duty factor op...
 
ESS-Bilbao Initiative Workshop. The CSNS rotating target concept and test pro...
ESS-Bilbao Initiative Workshop. The CSNS rotating target concept and test pro...ESS-Bilbao Initiative Workshop. The CSNS rotating target concept and test pro...
ESS-Bilbao Initiative Workshop. The CSNS rotating target concept and test pro...
 
ESS-Bilbao Initiative Workshop. Spokes vs. Elliptical cavities for medium-hig...
ESS-Bilbao Initiative Workshop. Spokes vs. Elliptical cavities for medium-hig...ESS-Bilbao Initiative Workshop. Spokes vs. Elliptical cavities for medium-hig...
ESS-Bilbao Initiative Workshop. Spokes vs. Elliptical cavities for medium-hig...
 
ESS-Bilbao Initiative Workshop. Concept and Technology of the PbBi-Target for...
ESS-Bilbao Initiative Workshop. Concept and Technology of the PbBi-Target for...ESS-Bilbao Initiative Workshop. Concept and Technology of the PbBi-Target for...
ESS-Bilbao Initiative Workshop. Concept and Technology of the PbBi-Target for...
 
ESS-Bilbao Initiative Workshop. Design concepts of and lessons learned from t...
ESS-Bilbao Initiative Workshop. Design concepts of and lessons learned from t...ESS-Bilbao Initiative Workshop. Design concepts of and lessons learned from t...
ESS-Bilbao Initiative Workshop. Design concepts of and lessons learned from t...
 
ESS-Bilbao Initiative Workshop.Pulse forming devices for high duty factor ope...
ESS-Bilbao Initiative Workshop.Pulse forming devices for high duty factor ope...ESS-Bilbao Initiative Workshop.Pulse forming devices for high duty factor ope...
ESS-Bilbao Initiative Workshop.Pulse forming devices for high duty factor ope...
 
ESS-Bilbao Initiative Workshop. Status of JSNS and R&D on mercury target.
ESS-Bilbao Initiative Workshop. Status of JSNS and R&D on mercury target.ESS-Bilbao Initiative Workshop. Status of JSNS and R&D on mercury target.
ESS-Bilbao Initiative Workshop. Status of JSNS and R&D on mercury target.
 
ESS-Bilbao Initiative Workshop.Review of SC spokes cavities for low-medium en...
ESS-Bilbao Initiative Workshop.Review of SC spokes cavities for low-medium en...ESS-Bilbao Initiative Workshop.Review of SC spokes cavities for low-medium en...
ESS-Bilbao Initiative Workshop.Review of SC spokes cavities for low-medium en...
 
ESS-Bilbao Initiative Workshop. High duty cycle RF Power Couplers
ESS-Bilbao Initiative Workshop. High duty cycle RF Power CouplersESS-Bilbao Initiative Workshop. High duty cycle RF Power Couplers
ESS-Bilbao Initiative Workshop. High duty cycle RF Power Couplers
 
ESS-Bilbao Initiative Workshop. RF structure comparison for low energy accele...
ESS-Bilbao Initiative Workshop. RF structure comparison for low energy accele...ESS-Bilbao Initiative Workshop. RF structure comparison for low energy accele...
ESS-Bilbao Initiative Workshop. RF structure comparison for low energy accele...
 
ESS-Bilbao Initiative Workshop. Front Ends for High Intensity
ESS-Bilbao Initiative Workshop. Front Ends for High IntensityESS-Bilbao Initiative Workshop. Front Ends for High Intensity
ESS-Bilbao Initiative Workshop. Front Ends for High Intensity
 
ESS-Bilbao Initiative Workshop. Low Energy Transport and space-charge compens...
ESS-Bilbao Initiative Workshop. Low Energy Transport and space-charge compens...ESS-Bilbao Initiative Workshop. Low Energy Transport and space-charge compens...
ESS-Bilbao Initiative Workshop. Low Energy Transport and space-charge compens...
 
ESS-Bilbao Initiative Workshop. Beam Dynamics Codes: Availability, Sophistica...
ESS-Bilbao Initiative Workshop. Beam Dynamics Codes: Availability, Sophistica...ESS-Bilbao Initiative Workshop. Beam Dynamics Codes: Availability, Sophistica...
ESS-Bilbao Initiative Workshop. Beam Dynamics Codes: Availability, Sophistica...
 
ESS-Bilbao Initiative Workshop. Beam dynamics: Simulations of high power linacs
ESS-Bilbao Initiative Workshop. Beam dynamics: Simulations of high power linacsESS-Bilbao Initiative Workshop. Beam dynamics: Simulations of high power linacs
ESS-Bilbao Initiative Workshop. Beam dynamics: Simulations of high power linacs
 
ESS-Bilbao Initiative Workshop. SNS Linac experience
ESS-Bilbao Initiative Workshop. SNS Linac experienceESS-Bilbao Initiative Workshop. SNS Linac experience
ESS-Bilbao Initiative Workshop. SNS Linac experience
 
ESS-Bilbao Initiative Workshop. Charge to working group: accelerator componen...
ESS-Bilbao Initiative Workshop. Charge to working group: accelerator componen...ESS-Bilbao Initiative Workshop. Charge to working group: accelerator componen...
ESS-Bilbao Initiative Workshop. Charge to working group: accelerator componen...
 
ESS-Bilbao Initiative Workshop. Overview of Multi-MW Accelerator Projects
ESS-Bilbao Initiative Workshop. Overview of Multi-MW Accelerator ProjectsESS-Bilbao Initiative Workshop. Overview of Multi-MW Accelerator Projects
ESS-Bilbao Initiative Workshop. Overview of Multi-MW Accelerator Projects
 

Dernier

Artificial Intelligence: Facts and Myths
Artificial Intelligence: Facts and MythsArtificial Intelligence: Facts and Myths
Artificial Intelligence: Facts and Myths
Joaquim Jorge
 

Dernier (20)

Driving Behavioral Change for Information Management through Data-Driven Gree...
Driving Behavioral Change for Information Management through Data-Driven Gree...Driving Behavioral Change for Information Management through Data-Driven Gree...
Driving Behavioral Change for Information Management through Data-Driven Gree...
 
Boost Fertility New Invention Ups Success Rates.pdf
Boost Fertility New Invention Ups Success Rates.pdfBoost Fertility New Invention Ups Success Rates.pdf
Boost Fertility New Invention Ups Success Rates.pdf
 
Axa Assurance Maroc - Insurer Innovation Award 2024
Axa Assurance Maroc - Insurer Innovation Award 2024Axa Assurance Maroc - Insurer Innovation Award 2024
Axa Assurance Maroc - Insurer Innovation Award 2024
 
Apidays Singapore 2024 - Building Digital Trust in a Digital Economy by Veron...
Apidays Singapore 2024 - Building Digital Trust in a Digital Economy by Veron...Apidays Singapore 2024 - Building Digital Trust in a Digital Economy by Veron...
Apidays Singapore 2024 - Building Digital Trust in a Digital Economy by Veron...
 
Real Time Object Detection Using Open CV
Real Time Object Detection Using Open CVReal Time Object Detection Using Open CV
Real Time Object Detection Using Open CV
 
How to Troubleshoot Apps for the Modern Connected Worker
How to Troubleshoot Apps for the Modern Connected WorkerHow to Troubleshoot Apps for the Modern Connected Worker
How to Troubleshoot Apps for the Modern Connected Worker
 
Partners Life - Insurer Innovation Award 2024
Partners Life - Insurer Innovation Award 2024Partners Life - Insurer Innovation Award 2024
Partners Life - Insurer Innovation Award 2024
 
Scaling API-first – The story of a global engineering organization
Scaling API-first – The story of a global engineering organizationScaling API-first – The story of a global engineering organization
Scaling API-first – The story of a global engineering organization
 
Handwritten Text Recognition for manuscripts and early printed texts
Handwritten Text Recognition for manuscripts and early printed textsHandwritten Text Recognition for manuscripts and early printed texts
Handwritten Text Recognition for manuscripts and early printed texts
 
🐬 The future of MySQL is Postgres 🐘
🐬  The future of MySQL is Postgres   🐘🐬  The future of MySQL is Postgres   🐘
🐬 The future of MySQL is Postgres 🐘
 
Artificial Intelligence: Facts and Myths
Artificial Intelligence: Facts and MythsArtificial Intelligence: Facts and Myths
Artificial Intelligence: Facts and Myths
 
Boost PC performance: How more available memory can improve productivity
Boost PC performance: How more available memory can improve productivityBoost PC performance: How more available memory can improve productivity
Boost PC performance: How more available memory can improve productivity
 
AWS Community Day CPH - Three problems of Terraform
AWS Community Day CPH - Three problems of TerraformAWS Community Day CPH - Three problems of Terraform
AWS Community Day CPH - Three problems of Terraform
 
Data Cloud, More than a CDP by Matt Robison
Data Cloud, More than a CDP by Matt RobisonData Cloud, More than a CDP by Matt Robison
Data Cloud, More than a CDP by Matt Robison
 
Powerful Google developer tools for immediate impact! (2023-24 C)
Powerful Google developer tools for immediate impact! (2023-24 C)Powerful Google developer tools for immediate impact! (2023-24 C)
Powerful Google developer tools for immediate impact! (2023-24 C)
 
Finology Group – Insurtech Innovation Award 2024
Finology Group – Insurtech Innovation Award 2024Finology Group – Insurtech Innovation Award 2024
Finology Group – Insurtech Innovation Award 2024
 
Exploring the Future Potential of AI-Enabled Smartphone Processors
Exploring the Future Potential of AI-Enabled Smartphone ProcessorsExploring the Future Potential of AI-Enabled Smartphone Processors
Exploring the Future Potential of AI-Enabled Smartphone Processors
 
Tech Trends Report 2024 Future Today Institute.pdf
Tech Trends Report 2024 Future Today Institute.pdfTech Trends Report 2024 Future Today Institute.pdf
Tech Trends Report 2024 Future Today Institute.pdf
 
Connector Corner: Accelerate revenue generation using UiPath API-centric busi...
Connector Corner: Accelerate revenue generation using UiPath API-centric busi...Connector Corner: Accelerate revenue generation using UiPath API-centric busi...
Connector Corner: Accelerate revenue generation using UiPath API-centric busi...
 
TrustArc Webinar - Stay Ahead of US State Data Privacy Law Developments
TrustArc Webinar - Stay Ahead of US State Data Privacy Law DevelopmentsTrustArc Webinar - Stay Ahead of US State Data Privacy Law Developments
TrustArc Webinar - Stay Ahead of US State Data Privacy Law Developments
 

Future accelerator scenarios

  • 1. FELIX QVI POTVIT RERVM COGNOSCERE CAVSAS Some future accelerator scenarios at RAL David Findlay Accelerator Division ISIS Department Rutherford Appleton Laboratory
  • 2.
  • 3.
  • 4. ISIS upgrades not necessarily accelerator upgrades
  • 5. Source strength × Reliability × Instrumentation × Innovation × Investment × Support facilities × Support staff × Cost effectiveness × User community 10 × 1 × 1 × 1 × 1 × 1 × 1 × 1 × 1 2 × 1 × 1.26 × 1.26 × 1.26 × 1.26 × 1.26 × 1.26 × 1.26 1 × 1 × 1.39 × 1.39 × 1.39 × 1.39 × 1.39 × 1.39 × 1.39
  • 6.
  • 7.
  • 9. Second Target Station upgrade No power upgrade, but 18 more instruments (7 on Day 1)
  • 11. New ~180 MeV linac ½ MW upgrade — extra power by increasing current Present 70 MeV linac
  • 12.  
  • 13.  
  • 14.  
  • 15. Higher injection energy  space charge forces less of a problem Should be able to inject and accelerate higher currents ~300 µA at 70 MeV (with 2RF upgrade) ~600 µA at 180 MeV? 800 MeV × 600 µA = 480 kW ≈ 0.5 MW Need detailed beam dynamics calculations to confirm — ASTeC Intense Beams Group
  • 16. Proton beam Individual proton in beam Space charge forces
  • 17.
  • 18.  
  • 19. Beam loss Why chopper? Ion source Linac Ring Bunching Also to minimise RF transients and control beam intensity
  • 20. No beam loss Ion source Linac Ring Bunching With chopper — gaps in beam
  • 21. Chopper performance required DC accelerator RF accelerator ns – µs spacing ESS: 280 MHz, bunch spacing 3.57 ns Switch between bunches Partially chopped bunches a problem! Tune shifts! Good Bad On Off
  • 22.
  • 23. Close-coupled chopper module 1145 mm Slow switch Fast switch Beam Buncher cavity Buncher cavity
  • 24. 1 MW upgrade Extra power by increasing energy
  • 25. Transmutation and energy production with high power accelerators, G. P. Lawrence, Los Alamos National Laboratory, http://epaper.kek.jp/p95/ARTICLES/FPD/FPD03.PDF Proton range in tungsten target from integrating stopping power
  • 26.  
  • 27. 1 MW upgrade 800 MeV synch. TS1 TS2 3 GeV synch. TS3 (+ 8 GeV) µ
  • 28. Circumference of 3 GeV synchrotron = 3 × circumference of 800 MeV synchrotron 800 MeV 26 m radius 2 – 3 µC per bunch 3 GeV 78 m radius Can “fit in” three times as much charge
  • 29.
  • 30.  
  • 31.
  • 32.  
  • 33.  
  • 34.  
  • 35.  
  • 36.
  • 37. 2½ & 5 MW upgrades
  • 38. 2½ and/or 5 MW upgrades
  • 39. 2½ MW upgrade TS3 µ 180 MeV linac 2 × 1.2 GeV synchrotrons 39 m radius 1 × 3 GeV synchrotron 78 m radius 50 pps
  • 40. Circumference of 3 GeV synchrotron = 2 × circumference of 1.2 GeV synchrotron 3 GeV 78 m radius 1.2 GeV 39 m radius 1.2 GeV 39 m radius
  • 41. 5 MW upgrade TS3 µ 180 MeV linac 2 × 1.2 GeV synchrotrons 39 m radius 2 × 6 GeV synchrotron 78 m radius 2 × 25 pps
  • 42.
  • 43. Want intense beam of neutrinos — but can’t accelerate neutrinos (no charge) Can get neutrinos from muons If muons decay in flight, neutrinos tend to go in direction of muons   So get intense beams of neutrinos by accelerating intense beam of muons — but no natural source of muons
  • 44.
  • 45.
  • 46. p + A Z  n,  , … (pion production)    +  (pion  muon + neutrino)   e +  +  (muon  electron + 2 × neutrinos) KARMEN experiment at ISIS Electron anti-neutrinos not produced by ISIS, so their appearance would be evidence for neutrino oscillations and thus evidence for neutrino mass  ’ s in all directions — KARMEN close to target
  • 47. Muon Storage Ring High current H – source Cooling Muon Acceleration ‘ near’ detector (1000–3000km) ‘ far’ detector (5000–8000km) ‘ local’ detector Proton Driver Target Capture
  • 49.  
  • 50. FNAL BNL CERN GSI CEA INFN JHF DUBNA RAL? Neutrino experiment
  • 51.
  • 52. Protons  pions  muons http://puhep1.princeton.edu/mumu/target/targettrans15.pdf
  • 53. Muons produced with large energy and angular spreads — pretty ghastly source for an accelerator “ Phase rotation” in energy-time phase space to selectively speed up slow muons — several different schemes, all need RF “ Cooling” to reduce transverse motion but not longitudinal motion — reduce longitud. and transv. energy in absorber — put back longitud. only — MICE experiment at RAL
  • 54. Particle with transverse momentum After losing energy in absorber After acceleration in RF cavity Muon Ionisation Cooling Experiment
  • 55.
  • 56. 50 GeV muon recirculating superconducting linac ISIS synchrotron
  • 57.
  • 58.
  • 59.
  • 60.
  • 61.
  • 62.
  • 63.  
  • 64.