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The scintillating fibre tracker reconstructs muon tracks before and after the MICE cooling section in 4 T magnetic field to measure the relative change in emmitance of the muon beam The tracker consists of five planar scintillating- fibre stations Each station is composed of three planes of scinti llating fibres laid out with 120 degrees radial spac ing Each fibre plane is comprised of a ‘doublet-layer’ in which the fibres in the first layer of the double t are interleaved with those in the second The MICE scintillating-fibre Tracker Scintillating Fibre Tracker MICE experiment One end of 350 m scintillating fib res are cut/polished then aluminum is sputtered to reflect signal to read-o ut end Reflectivity of mirrored end is m onitored; Mean = 75% RMS=4% Then fibres are laid-out on a mold w ith groove pitch of 426 m; 1491 fibr es per doublet-layer 48 doublet-layers have been assembl ed Attenuation length of samples from all clear fibre production batch have been measured; Mean = 8.4 m, Sigma = 0.5m Total length of waveguide is 4m f Assembly/QC-II Readout Muon cooling is necessary for -Factory and crucial for Muon Collider Conventional cooling methods do not work; () = 2.2 s Need fast muon cooling method ionisation cooli ng In principle ionisation cooling will surely work Energy loss in cooling material, then accelerati on in RF cavity In reality it is not that simple Delicate technology and integration problem Need to verify by building a realistic prototype VLPC: visible light photon counter quantum efficiency = 85 % gain = 35 – 60 k noise = 10 – 50 kHz @ 1pe threshold • Light signals from the tracker are tr ansported via waveguides to 1024 channe l VLPC cassettes. • A 1024 channel VLPC cassette converts light signals to electronic signals at 9K. • Electronic signals are read out by tw o AFEIIt boards. • MICE will use VLPCs and AFEIIt boards developed for D0. • MICE will adopt commercial cryostat s ystem Assembly/QC-I 15 stations are under preparation. 7 scintillating fibres are bundled together with rubber tube then eac h bundle is fed through one of a 2 2-way optical connector, where 7 f ibres are mated with a 1.05 mm cle ar-fibre. Number of fibres in each bundle an d its sequence in connector are ch ecked at QC step to ensure the cor rect fibre mapping. Three doublet-layers are glued to a carbon fibre frame sequentially with a jig then optical connectors are polished. Beam test of prototype tracker - I A prototype tracker with 4 s tations has been successfull y built. A beam test of the tracker has been performed i n 1 T magnetic field with 3 GeV pion and 0.3 GeV/c muon. Light signals were read-out with VLPC, AFEII boards usin g prototype cryostat. The sy stem performed successfully. Beam test of prototype tracker - II Poster session, HEP2007, Manchester Takashi Matsushita ([email protected]) Incoming muon beam Variable Diffuser Beam PID TOF 0 Cherenkov TOF 1 Trackers 1 & 2 measurement of emittance in and out Liquid Hydrogen absorbers 1,2,3 Downstream TOF 2 particle ID: KL and SW Calorimeter RF cavities 1 RF cavities 2 Spectromete r solenoid 1 Matching coils 1&2 Focus coils 1 Spectrometer solenoid 2 Coupling Coils 1&2 Focus coils 2 Focus coils 3 Matching coils 1&2 scintillating fibre optical connector waveguide VLPC cassette mirror Summary The design of the system has been presented. The tracker- construction project is going well to be ready in time for data taking on MICE beam line at RAL. The performance of the prototype tracker with beam test data has been summarised. The tracker performance such as l ight yield of the tracker and hit position resolution has been anal ysed. The beam test data have bee n well understood to be described with Geant based MC simulation. T he tracker performance was in acc ord with expectation.

The MICE scintillating-fibre Tracker

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Coupling Coils 1&2. Spectrometer solenoid 1. Matching coils 1&2. Matching coils 1&2. Spectrometer solenoid 2. Focus coils 1. Focus coils 2. Focus coils 3. m. Beam PID TOF 0 Cherenkov TOF 1. RF cavities 1. RF cavities 2. Downstream TOF 2 particle ID: KL and SW - PowerPoint PPT Presentation

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Page 1: The MICE scintillating-fibre Tracker

The scintillating fibre tracker reconstructs muon tracks before and after the MICE cooling section in 4 T magnetic field to measure the relative change in emmitance of the muon beam The tracker consists of five planar scintillating-fibre stations

Each station is composed of three planes of scintillating fibres laid out with 120 degrees radial spacing Each fibre plane is comprised of a ‘doublet-layer’ in which the fibres in the first layer of the doublet are interleaved with those in the second

The MICE scintillating-fibre TrackerThe MICE scintillating-fibre Tracker

Scintillating Fibre Tracker

MICE experiment

One end of 350 m scintillating fibres are cut/polished then aluminum is sputtered to reflect signal to read-out end

Reflectivity of mirrored end is monitored;Mean = 75% RMS=4%

Then fibres are laid-out on a mold with groove pitch of 426 m; 1491 fibres per doublet-layer 48 doublet-layers have been assembled

Attenuation length of samples from all clear fibre production batch have been measured;Mean = 8.4 m, Sigma = 0.5m

Total length of waveguide is 4m for MICE Internal and external waveguides for inside and outside of solenoide module, respectively, under preparation

Assembly/QC-II

Readout

Muon cooling is necessary for -Factory and crucial for Muon Collider Conventional cooling methods do not work; () = 2.2 s Need fast muon cooling method ionisation cooling

In principle ionisation cooling will surely work Energy loss in cooling material, then acceleration in RF cavity

In reality it is not that simple Delicate technology and integration problem Need to verify by building a realistic prototype

VLPC: visible light photon counter quantum efficiency = 85 % gain = 35 – 60 k noise = 10 – 50 kHz @ 1pe threshold

• Light signals from the tracker are transported via waveguides to 1024 channel VLPC cassettes.• A 1024 channel VLPC cassette converts light signals to electronic signals at 9K.• Electronic signals are read out by two AFEIIt boards.

• MICE will use VLPCs and AFEIIt boards developed for D0.• MICE will adopt commercial cryostat system

Assembly/QC-I

15 stations are under preparation. 7 scintillating fibres are bundled together with rubber tube then each bundle is fed through one of a 22-way optical connector, where 7 fibres are mated with a 1.05 mm clear-fibre.

Number of fibres in each bundle and its sequence in connector are checked at QC step to ensure the correct fibre mapping.

Three doublet-layers are glued to a carbon fibre frame sequentially with a jig then optical connectors are polished.

Beam test of prototype tracker - I

A prototype tracker with 4 stations has been successfully built. A beam test of the tracker has been performed in 1 T magnetic field with 3 GeV pion and 0.3 GeV/c muon. Light signals were read-out with VLPC, AFEII boards using prototype cryostat. The system performed successfully.

Beam test of prototype tracker - II

Poster session, HEP2007, ManchesterTakashi Matsushita ([email protected])

Incoming muon beam

VariableDiffuser

Beam PIDTOF 0

CherenkovTOF 1

Trackers 1 & 2 measurement of emittance in and

out

Liquid Hydrogen absorbers 1,2,3

DownstreamTOF 2

particle ID:KL and SW Calorimeter

RF cavities 1 RF cavities 2

Spectrometer

solenoid 1

Matching coils 1&2

Focus coils 1Spectrometer

solenoid 2

Coupling Coils 1&2

Focus coils 2 Focus coils 3Matching coils 1&2

scintillating fibre

optical connector

waveguide

VLP

C c

ass

ett

e

mirror

SummaryThe design of the system has been presented. The tracker-construction project is going well to be ready in time for data taking on MICE beam line at RAL. The performance of the prototype tracker with beam test data has been summarised.

The tracker performance such as light yield of the tracker and hit position resolution has been analysed. The beam test data have been well understood to be described with Geant based MC simulation. The tracker performance was in accord with expectation.