Download presentation
Presentation is loading. Please wait.
Published byPhebe Woods Modified over 9 years ago
1
New group at RWTH Aachen University III. Physikalisches Institut B Prof. Achim Stahl / Prof. Christopher Wiebusch Main activities: CMS (Si-Tracker, data analysis, Tier-2) Double Chooz / T2K / IceCube GRID computing & applications in medical physics beta-beams: group of under-graduate students Marcel Weifels – Michaela Schaumann – Bastian Kargoll – Jakob Wehner – Markus Lauscher goal: conceptional layout and physics potential for beta-beams at DESY Achim Stahl – RWTH Aachen University23-Oct-2008
2
View beta-beams as part of a European neutrino program Laguna: Large Neutrino Detector as core of the program LENA orGLACIERor MEMPHIS Physics Goals: Geo-Physics:Neutrinos from the core of the earth; heat release from the core; relevant for our climat Particle Physics:Proton decay; unification of forces, GUT theories large volume detector! Particle Physics:Neutrino oscillations; atmospheric, reactor (depends on detector technology), accelerator : beta-beams & super beam: CP-violation, origin of matter Astrophysics: Observation of -emission from super-novae SN1987A hundreds of observations Nuclear Physics:Understanding -cross sections, i.e. cooling of super novae
3
Potential tests of discrete symmetries
4
C Example: Test of charge conjugation C-violation implies P-violation, if CP is conserved.
5
Potential tests of discrete symmetries T Example: Test of time invariance CPT-theorem: T violation implies CP violation Need e beam and beam
6
Potential tests of discrete symmetries T Example: Another possibility to test T invariance. Need e beam and beam
7
Potential tests of discrete symmetries CPT Example: additional CPT tests and systematic checks with neutrino and antineutrinos
8
Need e beam and beam conventional -beam from pion-decay & e / e beam / beam
9
conventional -beam from the SPL LHC upgrade scenario
10
Need e beam and beam conventional -beam from pion-decay & optimal baseline (1st oscillation max.) optimal baseline (1st oscillation max.) 134 km @ 1 GeV 300 km @ = 150 1000 km @ = 500 e / e beam / beam
11
detector optimal baseline optimal baseline e 1 detector only (price) hard to accomodate both baselines from one lab. 300 km @ = 150 1000 km @ = 500 134 km @ 1 GeV
12
DESY L=960 km
13
Kinematics: Event rate in the detector (for fixed number of decays in the decay ring): dep. on Opening angle ~ 1/ flux at fixed distance ~ 2 E lab ~ optimal baseline ~ flux at detector ~ 1/ 2 E lab ~ cross section ~ ~ dep. on E * Opening angle independent of E * E lab ~ E * optimale Baseline ~ E * flux at detector ~ 1/E *2 E lab ~ E * cross section ~ E * ~ 1/E *
14
Inside the long HERA tunnel which was just shutdown before we came to DESY. The experiments ( like ZEUS in the previous photo ) are being dismantled. Asking the CEO of DESY what they will do with HERA after they have dismantled the experiments he just shrugged and said that they currently have no idea?!? Comment from the summer student who took the picture for beta-beams: reuse tunnel dipoles unusable can we use ? cryo plant power supplies vacuum equipment …
15
12 T dipole 2 x 35 m length Injection Acceleration Decay section approx. 22% of the ring, pointing down at 5°, lowest point 100m below HERA Preaccelerator „Halle West“ accelerator in HERA tunnel used as decay ring and for final acceleration 12 T dipole 35 m length
16
Preaccelerators final energy 50 MeV 2 bunch trains: 400 bunches final energy 4.7 GeV corresponding = 0.8 final energy 120 GeV after 5 turns TESLA linac 35 MV/m final energy 1.4 TeV ( =500) ramp at 0.5 T/sec (20 sec tot.) 500 sec decay at max. energy deaccelerate and dump Is 6 He the best isotope ? 500 sec lifetime at =500
17
Time Structure & Intensity bunch trains: 2 trains 800 m long (2.7 sec) 3469 bunches 1.3 GHz frequency structure of cycles: creation of ions: 0.1 sec preacceleration: 20 sec ramp of main ring: 20 sec < 20% loss active decays: 400 sec ~ 22% in straight section deaccelerate: 20 sec sum:~ 500 sec intensity (100% efficiency !): 2.6 10 10 ions per bunch 2.7 10 13 usefull per cycle 5.8 10 17 per year
18
We cannot afford a copy of EURISOL at DESY Most likely the largest problem ! Try an idea from T. Hirsch/M. Hass Weizmann ionizationbunchinglinac SARAF @ Weizmann: 40 MeV d-Beam 2 mA we need 3.6 10 11 ions/sec but very different time structure
19
a dream ? bunches thin target
20
can it work like that ? I‘ll stop speculating here Have not thought about 18 Ne
21
FP6 scenario Plots from Walter Winter / Patrick Huber
22
beta-beam @ DESY Super-beam from SPL Water-Cerenkov Det @ Frejus very similar sensitivity
23
We hope to become an associate member of the FP7 project Cooperation with FZ Jülich (COSY) has started First discussions with DESY Workshop on future particle & nuclear physics projects on 13./14. November in Frankfurt Will apply for funding starting July 2009 Main topics for our work Conceptional layout Ion source Physics studies
Similar presentations
© 2025 SlidePlayer.com. Inc.
All rights reserved.