Status of GEO600 - PowerPoint PPT Presentation

About This Presentation
Title:

Status of GEO600

Description:

Status of GEO600. Benno Willke. for the GEO600 team. ESF ... Spectrogram of h(t) Calibration. Data quality. Chi2. Calibration parameters. Bursts (HACRmon) ... – PowerPoint PPT presentation

Number of Views:16
Avg rating:3.0/5.0
Slides: 44
Provided by: bennow
Category:

less

Transcript and Presenter's Notes

Title: Status of GEO600


1
Status of GEO600
  • Benno Willke
  • for the GEO600 team

ESF Exploratory Workshop Perugia, September 2005
2
(No Transcript)
3
container cluster 2005
4
Tube / Trench
5
Clean Room / Control Room
6
Triple Pendulum Suspension
7
Thermal Noise / Monolithic Suspension
Weld
Silicate (Hydroxy- Catalysis) Bonding
8
reaction pendulum
9
GEO 600 optical layout
10
Dual Recycling Length Control
11
Michelson length control
lt 0.1Hz
lt 10 Hz
  • Reaction Pendulum
  • 3 coil-magnet actuators at intermediate
    mass, range 100µm
  • Electrostatic actuation on test mass bias
    630V, range 0-900V 3.5µm

gt 10 Hz
12
Alignment Control
Alignment Control
4 degrees of freedom at MC 1
4 at MC 2
4 at MI (common mode)
20 36
differential wave-front sensing
13
GEO 600 design sensitivity
14
Evolution of the GEO 600 Sensitivity
15
GEO600 Duty Cycle
date run name duty cycle longest lock
Jan 2002 E7 75 3h 40min
Aug 2002 S1 98 121h
Nov 2003 Jan 2004 S3-I (7days)S3-II(14 days) 95 98 95h
Aug 2004 Jan 2005 over night runs (51 days) 94
Mar 2005 S4 97 52h
16
S4
  • Feb 22nd March 23rd, 708 hours
  • Two manned shifts/day (5-21 UTC), 1
    Expert-On-Duty 8-8UTC
  • Fully automated overnight shifts SMS alarms to
    E-O-D
  • Locking status
  • DAQS (DCUs running, frame making, timing,
    calibration)
  • Temperatures
  • Vacuum
  • Instrumental duty cycle 97.5, 95 w/o noisy
    period, 72gt10h
  • Longest lock 52h

17
detector characterization
  • Sensitivity
  • Min/max spectrum of h(t)
  • 15 BLRMS of h(t)
  • Inspiral monitor
  • Spectrogram of h(t)
  • Calibration
  • Data quality
  • Chi2
  • Calibration parameters
  • Bursts (HACRmon)
  • Time frequency distribution
  • SNR distribution
  • Duration
  • Bandwidth
  • Lines (Linemon)
  • Line cataloguing
  • Harmonic identification
  • Sideband identification

18
Typical S4 Sensitivity
  • h(t)
  • derived from two quadratures of MI diff. EP
  • diff. calibration estimation of optical gain
    MID loop gain (for online calibration)
  • noise proj.
  • calibration lines for various online noise
    projections
  • violin mode
  • fiber modes from the monolithic suspension stage
  • MC turbo turbo pump frequency (822 Hz)
  • Mains 50 Hz and multiples from mains
  • h(t)
  • derived from two quadratures of MI diff. EP
  • diff. calibration estimation of optical gain
    MID loop gain (for online calibration)
  • noise proj.
  • calibration lines for various online noise
    projections
  • violin mode
  • fiber modes from the monolithic suspension stage
  • MC turbo turbo pump frequency (822 Hz)
  • Mains 50 Hz and multiples from mains
  • h(t)
  • derived from two quadratures of MI diff. EP
  • diff. calibration estimation of optical gain
    MID loop gain (for online calibration)
  • noise proj.
  • calibration lines for various online noise
    projections
  • violin mode
  • fiber modes from the monolithic suspension stage
  • MC turbo turbo pump frequency (822 Hz)
  • Mains 50 Hz and multiples from mains
  • h(t)
  • derived from two quadratures of MI diff. EP
  • diff. calibration estimation of optical gain
    MID loop gain (for online calibration)
  • noise proj.
  • calibration lines for various online noise
    projections
  • violin mode
  • fiber modes from the monolithic suspension stage
  • MC turbo turbo pump frequency (822 Hz)
  • Mains 50 Hz and multiples from mains
  • h(t)
  • derived from two quadratures of MI diff. EP
  • diff. calibration estimation of optical gain
    MID loop gain (for online calibration)
  • noise proj.
  • calibration lines for various online noise
    projections
  • violin mode
  • fiber modes from the monolithic suspension stage
  • MC turbo turbo pump frequency (822 Hz)
  • Mains 50 Hz and multiples from mains

19
Calibration
20
On-line optical TF measurements
P and Q
CAL
actuator
21
Calibration
?
22
Photon Pressure Calibrator
Wavelength 1035 nm _at_ 20C Max. power 1.4 W,
FWHM 0.66nm
Good agreement with ESD calibration
23
Optical Gain
24
Calibrated EP Quadrature Signals
25
Combining hP(t) and hQ(t) results
h 1/sqrt(Hz)
  • Get the best of hP and hQ plus a little extra!

26
increase of power recycling factor
Michelson Interferometer
Mode Cleaners
Laser
T0.09
Power Recycling Cavity Mode
matching gt85 Finesse 8300 Linewidth
30 Hz

Output Mode Cleaner
4/0.091.6 7000
27
Thermal lensing in BSoutput mode pattern (PRMI)
A few minutes after relocking f 8km ? a0.3 /-
0.05ppm/cm
Directly after relocking f20km
28
GEO 600 design sensitivity
29
Tuning signal recycling to 300 Hz
  • lock acquisition at 5kHz
  • tuning needs to adjust of 6 parameters (look-up
    table)
  • improved input file for simulations and how to
    transfer results to experiment
  • achieved downtuning to 200Hz
  • MI AA instability could be fixed

30
Interferometer Readout - Sidebands
mirror
phasemodualtor
laser
beam splitter
mirror
photodetector
31
Schnupp Modulation
mirror
phasemodualtor
laser
beam splitter
mirror
photodetector
32
Gravitational Wave Side Bands
mirror
phasemodualtor
laser
beam splitter
mirror
photodetector
33
Detuned Signal Recycling
mirror
phasemodualtor
laser
beam splitter
mirror
photodetector
34
Unbalanced Sidebands
35
Signal Recycling digital
  • digital loop allows for steep filter
  • noise contribution reduced by up to a factor of
    200

36
Sqrt circuits in MI loop
ESD F ? U2 Sqrt circuits are necessary to give
full linear force range for acquisition. Drawback
sqrt circuits are noisy 1µV/sqrt(Hz) (100µV/sqr
t(Hz) _at_ ESD)
37
MI loop whitening / dewhitening
Whitening right after mixer zero 3.5 Hz pole 35
Hz Dewhitening for both split passes Passive
dewhit-ening done in HV path (0-1kV)
38
sensitivity improvements since July
39
Evolution of the GEO 600 Sensitivity
40
Current vs. Design sensitivity
41
Non-stationary Noise
42
Near Future
  • finish commissioning
  • increase circulating power
  • find source of optical losses in PR cavity
  • increase MI loop gain between 1-10 Hz
  • improve RF circuitry
  • optimize stability
  • join S5 in overnight/weekend mode until
    commissioning is finished
  • fully join S5

43
(No Transcript)
Write a Comment
User Comments (0)
About PowerShow.com