1 / 13

Calorimeter design & simulations for Stage I

Calorimeter design & simulations for Stage I. Rikard Sandstr öm University of Geneva MICE PID phone conference 2005-12-02. Introduction. Case studied in this talk: Stage1 (TOFs & calorimeter only, no mag field) Flat beam 100<pz<300 MeV/c, starting upstream of TOFs.

turner
Download Presentation

Calorimeter design & simulations for Stage I

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


  1. Calorimeter design& simulations for Stage I Rikard Sandström University of Geneva MICE PID phone conference 2005-12-02

  2. Introduction • Case studied in this talk: • Stage1 (TOFs & calorimeter only, no mag field) • Flat beam 100<pz<300 MeV/c, starting upstream of TOFs. • 6 pi mm -> Many tracks lost due to geometry • Contaminations: • Pions & pion decay products • Muon decay products • Electrons surviving momentum selection upstream very easy to filter out with TOF. • Calorimeter geometries: • KLOE light, 4 layers • KLOE light, 5 layers • Smörgås/sandwich, one 4 cm KLOE light layer • Smörgås/sandwich, one 2 cm KLOE light layer

  3. Experimental setup mu pi egamma • Beam is contamined by pions and decay products from muons. • A few more complicated situations • Pions decaying to muons between TOFs • Muons missing last TOF, and giving hits from backscattering.

  4. KLOE light, 4 layers Need for collimator

  5. KLOE light, 4 layers Muons punching through

  6. KLOE light, 5 layers

  7. Smörgås, muon decay products

  8. Smörgås, muon & pion Red = muon, black = pion, green = pion becoming a muon between TOFs

  9. Pion-muon, KLOE light 5 layers Red = muon, black = pion, light blue = pion becoming a muon between TOFs

  10. Pion muon, smörgås Red = muon, black = pion, light blue = pion becoming a muon between TOFs

  11. Problem with muons at low pz Muons sometimes stop in KLOE layer Red = muon, blue = e+, green = photon

  12. With 2 cm thick KLOE layer Pushes cutoff to lower p Red = muon, blue = e+, green = photon

  13. Comments and future plans • All designs presented can do both positron rejection and pion rejection. • In order to justify geometry decision, I need more statistics. • (According to Alain.) How many events are needed? • Output format of G4MICE is changing as we speak. • Will take more data with the same beam once software is again stable.

More Related