Radiation Test Results Preliminary measurements from exposure to gamma rays at SCK-CEN B. Todd Huffman, C. Issever, T. Weidberg Summer Students - A. Povey,

Slides:



Advertisements
Similar presentations
Unit-2 Polarization and Dispersion
Advertisements

Chapter Twenty-Four: Fiber Optics
1 OTDR Studies First look with SM OTDR failed: not enough sensitivity to see RBS signal. Nice clear signals visible with MM OTDR (on free loan until 11/05/07).
Session 4: Termination and Splices. 2 FO Connectors Specifications Specifications Loss Repeatability Environment (temp, humidity, vibration, etc.) Reliability.
Optical sources Lecture 5.
The Radiation Tolerance of Specific Optical Fibers at −25 °C Joshua Abramovitch Southern Methodist University Faculty Advisors: Dr. Andy Liu, Dr. Jingbo.
S Digital Communication Systems Fiber-optic Communications - Supplementary.
1 William N MacPherson, Robert RJ Maier, James S Barton, Julian DC Jones Heriot-Watt University, EPS, Applied Optics and Photonics, Edinburgh, UK Alberto.
Stephen Gibson, ATLAS Offline Alignment, 2 nd July Incorporating FSI with the Offline Alignment Overview ATLAS Group, University of Oxford Stephen.
Radiator study status Y. Horii, Y. Koga, N. Kiribe, … (Nagoya University, Japan) 1 B2GM, 6 th July.
Detector lecturesT. Weidberg1 Opto-electronics Why use opto-electronics –General advantages –HEP experiments Elements of system –Emitters –Fibres –Receivers.
ATLAS/CMS Opto WG March '10 Tony Weidberg1 Radiation Damage Passive Components Versatile Link WP 2.3 –Todd Huffman, Mark Jones, Nick Ryder & Tony Weidberg.
CPR2 Optical Cables Joey Huston Michigan State University …taking optical signals from edge of CPR/crack detectors to PMT boxes mounted on back of wedges.
Lecture 4b Fiber Optics Communication Link 1. Introduction 2
1 Fiber Optic Measurement Technique Piotr Turowicz Poznan Supercomputing and Networking Center Training Session Kiev 9-10 October.
ENE 623/EIE 696 Optical Communication Lecture 3. Example 1 A common optical component is the equal-power splitter which splits the incoming optical power.
Chapter 8 Basic System Design.
Fundamental of Fiber Optics. Optical Fiber Total Internal Reflection.
1 Fiber Optics MULTIMODE VS. SINGLEMODE FIBER. 2 Fiber Optics When we talk about fiber we refer to either multimode or singlemode fiber. We further clarify.
Fiber Optics LINK LOSS BUDGET.
16 Sep 2008 Versatile Link Status Report F. Vasey on behalf of the project steering board With input from C. Issever J. Troska.
NA62 Gigatracker Working Group Meeting 2 February 2010 Massimiliano Fiorini CERN.
Versatile Link Project Description
Optical Fiber Classification Can be classified in a number of ways On the basis of manufacturing Single component/Multi component Glass.
By: Dr. N. Ioannides (Feb 2010)CT0004NI - L.06 – Fibre Optic Communications - pp 1/28 Fibre Optic Communications Saroj Regmi Lecture 06 CT0004NI Principles.
Light Wave Systems Dr Manoj Kumar Professor & Head Department of ECE DAVIET,Jalandhar.
Lecture 3. Example A common optical component is the equal-power splitter which splits the incoming optical power evenly among M outputs. By reversing.
Status of the PiN diodes irradiation tests B. Abi( OSU), R. Boyd (OU), P. Skubic (OU), F. Rizatdinova (OSU), K.K. Gan (Ohio State U.)
Intermode Dispersion (MMF)
Chapter 8 Basic System Design. System factors for designing from scratch: Design Verification FactorAvailable choices Type of fiberSingle mode, multimode,
Optical Components/Devices
Chapter 8 Basic System Design.
Montpellier, November 15, 2003 J. Cvach, TileHCAL and APD readout1 TileHCAL- fibre readout by APD APDs and preamplifiers Energy scan with DESY beam –Energy.
Optical Links CERN Versatile Link Project VL – Oxford involvement CERN VL+ for ATLAS/CMS phase II upgrade – Introduction and aims – Oxford workpackage:
SLHC Proposal B Status Optical Readout System Irradiation Guidelines K.K. Gan, Karl Gill, Jan Troska, Francois Vasey, Todd Huffman, Cigdem Issever, Tony.
C. Issever, Oxford 1 Status of Radiation Proposal Focus on: Amendment to Proposal Radiation Protocols.
Tony WeidbergATLAS/CMS Opto WG March '111 Oxford R&D Cold Fibre radiation tests Splitter and connector radiation tests Fibre reliability after radiation.
Status of the Remote HV System 10 June 2015 TileCal week, upgrade session Roméo Bonnefoy, Romain Madar and François Vazeille ● Summary of performances.
CERN EN-EL Cabling and Optical Fibre Section CERN EN-EL Cabling and Optical Fibre Section Mini Workshop, Simao Machado, EN/EL/CF.
Radiation damage to LHC fibres Andy Presland (AB/ABT/EET) Thijs Wijnands (TS/LEA) L.De Jonge (TS/EL) T. Sugito (Draka Comteq NKF Kabel B.V)
FIBER OPTIC TRANSMISSION
Slide 1 5th LHC RADIATION WORKSHOP, CERN, , Jochen Kuhnhenn, Fraunhofer INT Radiation tolerant fibres for LHC controls and communications.
4 March 2009 Versatile Link Project Status F. Vasey on behalf of the project steering board With input from C. Issever J. Troska.
Lecture 4. Pulse Propagation in Fibers Problem: Inject an optical pulse of width  0 into the fiber at z = 0. What is the speed of propagation and what.
Remembering PWO Radiation hardness studies at IHEP, Protvino Y. Kubota.
The Versatile Link System-level Component Tests
UNIT-II Optical Fiber ECE – IV SEM Manav Rachna College of Engg.
STATUS ON Optical fiber: Preliminary tests on Optical Fiber and Fiber Optic Feedthrough Massimo Rossella, Marco Prata, Tommaso Cervi INFN, Sezione di Pavia.
1 Optical fiber irradiation tests 1.Results from ATLAS LAr 2.Narrow down to Germanium doped GRIN fiber 3.Preliminary tests 4.Tests in the plan Jingbo Ye.
11 Apr The Versatile Link Project CERN CERN Jan Troska, Francois Vasey, et al. Jan Troska, Francois Vasey, et al. Oxford Oxford.
March 14, 2016 Report on SMU R&D work1 Link-On-Chip (LOC) 1st Prototype  Status:  Prototype chip with the clock unit (PLL), serializer, laser driver,
Radiation Tests on optical fibres for the LHC machine T. Wijnands, D. Ricci CERN EN department Fraunhofer INT.
CMS/SLHC irradiation tests of current optical link components in March 06 K Gill
Image: digikey.com 5 Image:
Optical InterLinks LLC (OIL)----- GuideLink ™ Polymer Waveguide Products Multichannel Monolithic Data Network Monitoring Taps Using OIL’s Polymer Waveguide.
1 Roger Rusack The University of Minnesota. Projects  Past Projects  11,000 channels of 0.8 Gbs for the CMS crystal calorimeter readout.  1,500 channels.
Chapter 7 Basic System Design.
SLHC Radiation Test Results
Radiation Damage Studies for Solid State Sensors Subject to Mrad Doses
Chamber Design and Integration RE3/1 and RE4/1
The Optical Fiber and Light Wave Propagation
Design of Optical Digital Transmission Systems
Chapter 7 Basic System Design.
Guidelines for Fiber Optic Design and Installation
Characterizing FOX Demonstrator Test Setups for LArDPS to FEX Modules at CERN RuthAnn Gregory.
Benoît Brichard Instrumentation Department Tel: Secr: Fax: Ooms Hans
Radiation tolerant fibres for LHC controls and communications
Design of Optical Digital Transmission Systems
Leaders in Light Perfect for Raman
K. Gill, G. Cervelli, R. Grabit, F. Jensen, and F. Vasey. CERN, Geneva
Presentation transcript:

Radiation Test Results Preliminary measurements from exposure to gamma rays at SCK-CEN B. Todd Huffman, C. Issever, T. Weidberg Summer Students - A. Povey, K. Dunn Also Presented: Some SMU group tests.

The active tests  50m lengths of three different Ericsson fibres  High dose 850nm  50m lengths of Infinicor (Corning?) fibre  High and low dose 850nm Including results from SMU (Andy Liu)  High and low light level tests (VCSEL vs. LED)  50m length of SMF28 Single Mode 1310nm  True for all SM tests.  MM Fused Taper Splitter (1x4)  SM PLCC splitter (1x4)  MM and SM LC-LC connectors

Optical Patch cables Conn.

Test Setup  Connector-loss Test Laser Splitter Radiation exposure Vol. Connector ST Patch Cables Photodiode+ Amplifier Test channel Reference channel

Test Setup  Splitter test Laser Splitter Radiation exposure Vol. Splitter ST Patch Cables Photodiode+ Amplifier

System Stability tests  Ran system for extended time periods. Find stability limitations Example shown at right for Laser sources LED sources; next slide.

System Stability tests  LED light source Low light levels Highly Stable

System Stability tests  EEL Light source Single mode

The two locations  RITA  BRIGITTE

The  sources  BRIGITTE 10cm region of highest dose  Managed to fit all active tests into this volume 25.1kGy/hr  RITA 1.12kGy/hr  SMU 0.42kGy/hr 0.38kGy/hr 0.026kGy/hr

Temperature in the vessel The Temperature in RITA was the same as average room temperature. Vessel Lowered into Source Vessel Removed Vessel returned & Removed again.

Crate Temperature Temp. in the crate containing light sources.

Single Mode 1310nm Radiation begins Radiation Ends Short Radiation exposure

Single Mode Data Very low attenuation levels.

Graded Index Ericsson Fibres

Graded Index Infinicor

From SMU group A. Liu, J. Ye

Parameterising Infinicor Data  Function pass through zero at zero dose.  0.03 to 0.3 kGy total dose SMU 0.42kGy/hr  0.3 kGy to 75kGy total dose Oxford 1.12kGy/hr  180.0kGy to 720kGy Oxford 25kGy/hr  In the gap between 75kGy and 180kGy Just interpolated linearly.

Parameterisation Results

Parameterisation results  Infinicor fibre total loss Assume typical ATLAS fibre run. Use parameterization previously found  Total loss is 0.36 dB  Conservatively

Loss Estimates  Assume L(SLHC)= 3000 fb -1  Safety factor = 1.5 (r 110).

Which fibre is best? Eric 1 Eric 2 Eric 3 Infinicor

Infinicor Light Intensity effects

Active MM Component Raw Data Ref. Fibre Fell from top of gantry into radiation zone.

Active MM Component tests Region of exposure

Single Mode LC-LC connector

The Passive tests  Components tested before and after irradiation up to 720kGy. 7 fused taper splitters (1 850nm multimode, the remainder 1310nm single-mode) with SC connectors on all in and outputs; 2 single-mode PLCC splitters with SC connectors on all in and outputs; 6 LC-LC Multimode barrels  Result  No damage at 0.02dB level

Passive test results DeviceAttenuation, dBStandard Dev., dB 7E (FT splitter SM) E (FT splitter SM) E (FT splitter SM) E (FT splitter SM) E (FT splitter SM) E (FT splitter SM) M (PLCC splitter SM) M (PLCC splitter SM) E (FT splitter MM)

A working nuclear reactor (Looking down from above)

The reactor core (Side View)

Clearly, there have been no discernable side effects.

Conclusions  SMF-28 Single mode fibre is very rad-hard and likely sufficient for the upgrade.  Infinicor (Corning) GRIN fibre exhibits and estimated 0.36dB loss in ATLAS. This includes safety factors!  2 of the three Ericsson fibres tested well and comparable to the Infinicor fibre. Second source  Manufacturing details for all MM fibres are difficult to obtain.  Passive Connector tests were highly successful; active tests less so. Radiation damage consistent with zero (MM) or with temperature effects (SM).  Fused Taper splitter damage is all consistent with radiation damage to the optical fibre that make them up. More tests in this area may be useful.  PLCC splitters seem inordinately suseptable to ionizing radiaion. An area very much worth further exploration.  Some temperature effects will be further explored in our environmental chamber at Oxford.

End Of Talk Next Slides are backup slides

Single Mode Raw Data