MONALISA David Urner Paul Coe Matthew Warden Armin Reichold Oxford University.

Slides:



Advertisements
Similar presentations
Summary of the discussion for the commissioning session 2 nd ATF2 Project Meeting KEK, Tsukuba, Japan 6/ 1/ 2006 T.Okugi (KEK)
Advertisements

MONALISA: Interferometric Position Monitor at the Nanometre Scale David Urner Paul Coe Matthew Warden Armin Reichold Oxford University.
AMULET Advanced Metrology Using LasEr Tracers John Dale.
The LiCAS FSI Subsystem Current Status and Initial Measurements John Dale for the LiCAS Collaboration IOP HEP April 2008.
Wed 15 Jul 2009 ATF2 weekly meeting Oxford MONALISA 1 MONALISA at ATF2 First installation report 15 July 09.
ILC roles Interferometry Results 2009 / 2010 Mon 20 Apr :00 JST (01:00 UTC) MDI TILC09 – Tsukuba OXFORD MONALISA 1.
Accelerator and Beam Delivery The LC-ABD (Linear Collider: Accelerator and Beam Delivery) consortium is a group of UK institutes aiming to develop new.
The Linear Collider Alignment and Survey (LiCAS) Project Richard Bingham*, Edward Botcherby*, Paul Coe*, Grzegorz Grzelak*, Ankush Mitra*, Johannes Prenting.
LiCAS Project: FSI Overview Richard Bingham, Edward Botcherby, Paul Coe, John Green, Grzegorz Grzelak, Ankush Mitra, John Nixon, Armin Reichold University.
Initial Calibration and Stability Results from the LiCAS RTRS FSI System John Dale for the LiCAS Collaboration IWAA February 2008.
Final Doublet Stability and in-detector Interferometry MONALISA David Urner Oxford University.
Sta bilization of the F inal F ocus : Stabilization with Nano-Meter Precision.
Wed 17 Jun 2009ATF2 weekly meeting Oxford MONALISA 1 MONALISA at ATF2 Plans for first installation 30 June to 19 July 2009.
StaFF: Motion Stabilization with Nano-Meter Precision Proposed experiment conducted within framework of StaFF (Stabilization of Final Focus for ILC). Funded.
S. M. Gibson, P. A. Coe, Photon02, 5 th September Coordinate Measurement in 2-D and 3-D Geometries using FSI Overview ATLAS Group, University of.
Linac Coherent Light Source Stanford Synchrotron Radiation Laboratory Stanford Linear Accelerator Center LCLS Undulator Physics.
MONALISA David Urner, Armin Reichold, Paul Coe, Matthew Warden, Geoff Rayner Monitoring Alignment and Stabilisation with high Accuracy (Previously known.
S. Gibson FSI Offline Analysis 9 th October FSI Alignment: Offline Analysis Overview ATLAS Group, University of Oxford Stephen Gibson, Danny Hindson,
SLC  Testbed Proposal Jeff Gronberg  working group SC Linear Collider Retreat June 26 – 29, 2002.
IPBPM piezo-mover system and plans for in situ monitoring of calibration and stability Current status and plan for ATF2 Philip Bambade Laboratoire de l’Accélérateur.
Status of IPBSM Improvement N. Terunuma, KEK 2012/July/13 ATF2 Weekly Meeting.
Integration and Alignment of Optical Subsystem Roy W. Esplin Dave McLain.
ATF2 Status and Plan K. Kubo ATF2, Final Focus Test for LC Achievement of 37 nm beam size (Goal 1) – Demonstration of a compact final focus.
US CMS DOE/NSF Review: May 8-10, Endcap Alignment Dick Loveless DOE/NSF Review 9 May 2001.
1 ATF2 - IP Chamber Design and manufacturing of Chamber with high precision piezo actuators for high resolution BPMs Status / progress report – 26 June.
Status on MONALISA presented by D. Urner 6 th stabilization day 9. June 09.
Optical Anchor / Interferometer Status: June, 2004 Josef Frisch.
Concepts for Combining Different Sensors for CLIC Final Focus Stabilisation David Urner Armin Reichold.
1 StaFF Progress Report David Urner University of Oxford.
Update on alignment kit and stave 250 frame M.Gibson (RAL) 1.
David Urner, Oxford University, RHUL – June StaFF Stabilization of Final Focus Motion Stabilization with Nano-Meter Precision David Urner Paul Coe.
ATF2 meeting LAPP; David Urner 1 David Urner Paul Coe Matthew Warden Armin Reichold Geoffrey Rayner MPhys alumnus MONALISA Monitoring, Alignment.
ATF2 Magnets ATF2 Magnets 3rd July 2007Cherrill Spencer, SLAC. Info on top of FD ATF2quad for D. Urner 1 Information on top of the QC3 style quads that.
Tue 31 Mar :50 (CEST) 13:50 UTC CLIC stabilisation day 5 - LAPP OXFORD MONALISA 1 Options for interferometric monitoring of CLIC test magnet M.
MONALISA an Update David Urner Paul Coe Matthew Warden Armin Reichold Monitoring, Alignment & Stabilisation with high Accuracy.
Stabilization of Focus at ATF2 David Urner University of Oxford.
A Straightness Monitor Made from Distance Meters First installations fall 2006 First results spring A B.
MONALISA David Urner Oxford University. Straightness Monitor Build from Distance Metres Decision taken this workshop to move from existing extraction.
1/10 Tatsuya KUME Mechanical Engineering Center, High Energy Accelerator Research Organization (KEK) ATF2-IN2P3-KEK kick-off meeting (Oct. 10, 2006) Phase.
Welcome to MONALISA A brief introduction. Who we are... David Urner Paul Coe Matthew Warden Armin Reichold Electronics support from CEG Central Electronics.
Update on the Gas Ring Imaging Cherenkov (GRINCH) Detector for A 1 n using BigBite Todd Averett Department of Physics The College of William and Mary Williamsburg,
The stabilisation of the final focus (StaFF) system Sun 12 th March 2006 MDI – LCWS06 at I I Sc Bangalore David Urner, Paul Coe, Armin Reichold.
T. Suehara, H. Yoda, T. Sanuki, Univ. of Tokyo, T. Kume, Y. Honda, T. Tauchi, High Energy Accelerator Research Organization (KEK) ATF2-IN2P3-KEK kick-off.
LASER FRAME: Straightness monitor (Tentative results of resolution test) Third Mini-Workshop on Nano Project at ATF May 30-31,2005 KEK Nano BPM Group Y.Higashi,
MONALISA David Urner Paul Coe Matthew Warden Armin Reichold Monitoring, Alignment & Stabilisation with high Accuracy.
MONALISA Compact Straightness Monitor (CSM) simulation and Calibration Summer Project 2008.
G.Barber Mice Tracker Mechanical Progress Tracker Mechanical Progress Contents:- Station Space Frame Station Layout Light Guide Map Connectors Patch.
1/13 Tatsuya KUME Mechanical Engineering Center, High Energy Accelerator Research Organization (KEK) ATF2-IN2P3-KEK kick-off meeting (Oct. 9, 2006) Mount.
Taikan SUEHARA, IN2P3-KEK collaboration meeting on ATF2, Annecy, 2007/10/15 Shintake Monitor: Installation and Commissioning Schedule Taikan SUEHARA, The.
09:40 – 10:00 (JST) Wed 5 Mar 2008 MONALISA : JAI Oxford MDI ATF2 TILC08 Sendai Japan 1 / 26 MONALISA Laser based alignment and stability monitoring.
Current Status of LASER FRAME for KEK-Nano BPM (Tentative results of resolution test) Second Mini-Workshop on Nano Project at ATF December 11-12, 2004.
Superconducting final doublet Support A.Jeremie. SC magnet steps Motivation: have an active stabilisation as planned in ILC and CLIC => need to evaluate.
MONALISA Update David Urner ATF2 Meeting Dec
ATF2 weekly meeting 4 July 2007 MONALISA: Attachment of Vacuum Vessels for ATF2 David Urner.
May 31, 2005Mike Hildreth – ATF 2005 Energy Spectrometry and ATF Components of the nano-BPM Test Program and Plans for Future Tests Mike Hildreth University.
CERN, 27-Mar EuCARD NCLinac Task /3/2009.
Wed 24 Jun 2009ATF2 weekly meeting Oxford MONALISA 1 MONALISA Double Bellow System Forces test results Oxford: June 2009.
May 31, 2005Third Mini-Workshop on Nano Project at ATF (M. Ross) Plans for nanometer cavity BPM studies Energy Spectrometer evaluation (Hildreth) Integration.
Design for a New Optical Table of the Shintake Monitor Takashi Yamanaka The University of Tokyo ATF2 weekly meeting 2007/9/26.
1 SLAC RC Status Report 19 July 2010 LHC Collimation Working Group Meeting Jeff Smith/SLAC BNL - FNAL- LBNL - SLAC US LHC Accelerator Research Program.
Current Status of QBPM Electronics and Magnet Movers D. McCormick, J Nelson, G White SLAC S Boogert Royal Holloway Y. Honda, Y.Inoue KEK.
Alignment and stability session
David Urner Oxford University/JAI
Summary FD Support System
Topics on Vibration Issues
David Urner Paul Coe Matthew Warden Armin Reichold Oxford University
ATF ICB meeting, LCWS08, UIC, Chicago, 11/18/2008
IP configuration session
Report on ATF2 Third Project Meeting ATF2 Magnet Movers ATF2 Q-BPM Electronics Is SLAC ILC Instrumentation Group a good name?
David Urner, Armin Reichold , Paul Coe, Matthew Warden, Geoff Rayner
Presentation transcript:

MONALISA David Urner Paul Coe Matthew Warden Armin Reichold Oxford University

STATUS: New Design More traditional Michelson setup leads to nice results. Integration of many interferometer into one node more difficult – A compact version is ready and shows promise.

Parallel Michelson Original concept Input beam PZT Mechanical design PZT

Michelson : realised in the lab Stationary mirror Beam-splitter PZT swept mirror Camera Launch collimator

Michelson : Camera view of mirror sweeping

Replaced camera with MT connector used 4 nearest neighbour fibres to read out

Use modified Carré algorithm to extract 4 channel average wrapped phase

Extract independently from each channel using 4 points separated equally in time Here 320 cycles apart Use modified Carré algorithm to extract wrapped phase for each channel fit a line Fit a line to each straight section around cycle and extract residuals 1  ~ 40 mrad equivalent 10 nm

STATUS: New Design More traditional Michelson setup leads to nice results. Integration of many interferometer into one node more difficult – A compact version is ready and shows promise.

Compact Interferometer head Shown here using 2cm optics 1cm optics likely to work. According to Zemax simulation diffraction should not be a problem. (tests underway) 5cm 4cm Collimator Beam splitter Readout fibres Input fibre Retro Reflector

Status of Subsystems Electronics ready for mass production (in use by LiCAS, DC mode integrated for us) Temperature measurement system ready for mass production (24 channels built and tested) Readout software: –ADC Readout needs adaptation from LiCAS –Binary storage format ready FSI data analysis code: –Simple version working and used –In collaboration with LiCAS group implementing advanced object oriented analysis framework. Evaluation of Laser to buy for ATF setup finished by end of January. –New laser available by end of February

Mass Production of Interferometer Full test of present system in air. Test vacuum system for laboratory: –Design ready to build vacuum test system –Available in February –Test present setup in vacuum Vacuum fibre feedthrough: –Commercial feedthrough too expensive: Build own feedtroughs Jig in production now First workable feedthroughs by February to be used in test vacuum system Build Jig to place/glue components (beamsplitter and collimator) precisely onto base. –Build first model by March

Setup at ATF Need Scaffolding to hold vacuum tubes Triangle Nodes Concept –Drawings ready for base plate –Construction by March Vacuum system at ATF

Triangle Nodes Concept –Drawings ready for base plate –Construction of base plateby March –Construction of instrument platform and dome by May Vacuum system at ATF

KEK BPM nodes Concept allowing for considerable angle play. Fixed (or single bellow) attachment to KEK aluminum bar. Installation early summer 2007

Move to ATF2 If 2 nano-BPM setups at ATF2 beam line available: –Within reasonable distance between each other. – Moving experiment to ATF2 beam line can be considered. Requirements: –New scaffolding and floor plate –New “flowerpots”

SLAC/LLBL BPM Node Here attach vacuum tube for interferometer Attached to BPM. Holds retro reflector. Firm connection Strain Gauge Needs bellow to allow motion of BPM –Vacuum causes a force order of 100N! Develop small force vacuum mount using double bellow system. Allows small motion (~1 mm) of BPM-system (we still can measure) Large motion (5-10mm) are possible but we cannot measure anymore Test stand to measure remaining (perpendicular) force on BPM frame. -1mm-3mm1mm3mm 1N 2N -1N 0N -2N -3N Force exerted on carbon frame (BPM) ±1mm: < 0.5N/mm ±3mm: < 0.8N/mm Force exerted by perpendicular motion

SLAC/LLBL BPM Node Needs bellow to allow motion of BPM –Vacuum causes a force order of 100N! Develop small force vacuum mount using double bellow system. Allows small motion (~1 mm) of BPM-system (we still can measure) Large motion (5-10mm) are possible but we cannot measure anymore Test stand to measure remaining (perpendicular) force on BPM frame. Next item to design is retro holder object: a small tube with vacuum flanges for both bellows at the end. Plan to mount in March “Flower pot” design needed by March; built in May –Flower pot attached to scaffolding not carbon fibre tube! Retro Reflector Retro Holder

SLAC/LLBL BPM Node Needs bellow to allow motion of BPM –Vacuum causes a force order of 100N! Develop small force vacuum mount using double bellow system. Allows small motion (~1 mm) of BPM-system (we still can measure) Large motion (5-10mm) are possible but we cannot measure anymore Test stand to measure remaining (perpendicular) force on BPM frame. Next item to design is retro holder object: a small tube with vacuum flanges for both bellows at the end. Plan to mount in March Allow for true non-touching setup –More difficult analysis Retro Reflector Retro Holder Nano Grid

Combining all Measurement Three systems have to be operated simultaniously: –3 SLAC-BPMs define beam direction –1 KEK Q-BPM measures motion with respect to that direction. This BPM is still present on the original motion stage. It can be correlated to the aluminium bar via a Michelson interferometer. –MONALISA measures relative motion of two BPM systems. Isues to be solved: –Read KEK BPM with SLAC readout system –Align two BPM system that both get optimal measurements We would like to ask if this can be demonstrate before we install MONALISA.

ATF2: Measuring Motion of Shintake Monitor with Respect to Final Doublet Idea of Compact Straightness Monitor (CSM) presented in May: Point source Retro Mirror Collimator Fibre launch and readout Long arm Use reflection from fibre end as short arm Distance meter

Binocular Michelson Setup takes shape on our optical table.

Attaching CSM: Shintake Monitor What do we want to monitor: Monitor motion (angular vibrations) of “intersection mirrors” –Its already a mirror –Has to be done in air (Requires close distance monitor) –Needs to correlate the motion measurements of the two mirrors. Monitor off-axis camera –Easier setup –Mor indirect measurement

Attaching CSM: Focusing Magnet Unsolved Problem on how to monitor magnetic centre of focusing magnet. –Attach CSM to one point of magnet –Use several distance metres to monitor breathing of magnet –Correlate with temperature measurements Retro Reflectors CSM