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BARREL CMS/ECAL CONSTRUCTION

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Title: BARREL CMS/ECAL CONSTRUCTION


1
BARREL CMS/ECAL CONSTRUCTION AND QUALITY
CONTROL E. Auffray on behalf of ECAL
collaboration
2
(No Transcript)
3
BARREL ECAL DISTRIBUTED PROJECT
Alveola LPNHE
Ferrule Holder Saclay
Russia BCTP
Tablet LPNHE/ETHZ
CERN ETHZ Lisbon LPNHE
Monitoring Caltech Saclay
Japan Hamamatsu
Basket grid
Electronic INP Lyon Princeton ETHZ
2 Regional Centers - CERN - INFN/ENEA
APD /Capsules MINNEUPSI INP Lyon
4
ECAL Quality Control Organisation
  • Each component is equipped with a unique
    bar-coded label
  • A strict quality control is imposed for each
    individual part (Crystals, APDs, Capsules,
    Tablets, Alveola)
  • For each step of the assembly a detailed
    assembly procedure has been defined which has to
    be validated step by step by the operator
  • Each assembly step is validated by a test
  • ?
  • A quality system management has been developed
  • CRISTAL system

5
Quality Assurance CRISTAL software
Assembly procedure in CRISTAL
Parts Composition
6
Role of Regional Centre
Crystal Quality Control
Assembly
7
Crystal Reception
Crystal identification
Crystal unpacking
Crystal registration Visual inspection
8
Crystal quality Control
INFN/ENEA Rome
CERN/labo27
  • Automatic control of
  • Dimensions
  • Transmission (radiation hardness)
  • Light yield and uniformity

Capacity of 60 crystals/day
9
ACCOS Dimension measurements
  • CERN and Rome similar instruments, same protocol
  • 3D measurement with a commercial machine

CERN
Rome
10
ACCOS Transmission
CERN and Rome different approach
  • Rome LT TT at the same time, single beam
  • integrating sphere diodes array
  • Cern LT TT 2 specrophotometers,
  • double beam filters

Rome
CERN
Lamp
Photodetector
11
Intercalibration ACCOCE/ACCOR
Comparison of the longitudinal transmission
LT620gt65
LT420gt55
LT360gt10
sR-C1.4
sR-C0.5
sR-C0.8
12
ACCOS Light Yield
Cern and Rome different approach
  • CERN LY from decay time spectrum integration
  • Rome LY classic photo peak determination in
  • the scintillation spectrum of PWO

13
Intercalibration ACCOCE/ACCOR
sR-C0.19/Xo
-0.35ltFNUF(/Xo)lt0.35
14
Next step SubUnit assembly
Capsules crystals
SubUnits
2x17 types of crystals
23 types of capsules
15
Capsule Assembly in Lyon
16
Capsule Quality Control
  • Capsule control bench (Capucine)
  • Measurements of
  • Gain curve
  • Dark current
  • Noise

Capacity of 200 capsules/day
17
Correlation between APDs Capsules measurements
18
Gluing Setup
INFN/ENEA Rome
CERN/lab27
Gluing jig
CERN
Capacity of 50 sub-units/day
19
Gluing Quality Control optically
Bubble viewer
Bubbles
No Bubble
20
Gluing Quality Control functionnality
  • Sub-unit control bench (Capucinette)
  • Measurement of
  • V gain50
  • Vbreakdown
  • Dark current

Correlation Capucine/capucinette
Gluing jig
RC CERN RC Rome
21
Next step Submodule assembly
10 sub-units
Alveola structure
Ferrule holder
Tablet
22
Submodule Assembly
Capacity of 5submodules/day
23
Module Assembly
24
Module Assembly
25
Supermodule assembly in CERN
  • Reception of modules assembled in RC Rome
  • Bare Supermodule assembly with modules 1, 2, 3, 4
  • Installation of monitoring system
  • Installation of electronics
  • Supermodules will be then
  • calibrated, stored installed in CMS P5

26
Transport modules to CERN
27
Bare Super-Module Assembly
28
Monitoring installation
29
Current status of barrel construction
  • Spring 1999 module 0 (400crystals) validation
    of toolings, used for cooling test
  • Spring 2001 module 0 (400 crystals)
  • for beam tests
  • Automn 2001/Winter 2002 construction of 1st
    bare Supermodule
  • 3 Modules on 4 already built
  • Mechanicals part for superbasket will arrive end
    of April
  • SM1 assembled in May
  • In 2002, in addition to SM1 build 20 Modules (for
    5SM)
  • 8700 crystals received and fully characterised
    (see F. cavallari talk)
  • 25000 APDs received (see R. Russack talk)
  • 2500 capsules produced
  • 2100 sub-units produced
  • 180 submodules produced

30
1st M4 of SM1
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