Introducing the EVLA NRAO Postdoctoral Symposium, 29 April-1 May 2009 Michael P. Rupen Project Scientist for WIDAR.

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Presentation transcript:

Introducing the EVLA NRAO Postdoctoral Symposium, 29 April-1 May 2009 Michael P. Rupen Project Scientist for WIDAR

2 The promise of the EVLA

3 Living in the past: the VLA 1970s technology Amazing at the time – Order-of-magnitude improvement in sensitivity, resolution, flexibility Still the premier radio telescope in the world

4 Living in the past: the VLA 1970s technology Amazing at the time – Order-of-magnitude improvement in sensitivity, resolution, flexibility Still the premier radio telescope in the world

5 Enter the EVLA Fibers New receivers New correlator Bandwidth x80 Sensitivity x10

6 Continuous Frequency Coverage 1-50 GHz --> Observations defined by science, not hardware

7 Wide Bandwidths 2:1 bandwidth ratios … with LOTS of channels Sensitivity 1- , 12-hours Red: Current VLA Black: EVLA Goals

8 Wide Bandwidths 2:1 bandwidth ratios … with LOTS of channels Sensitivity UV-coverage Rau, Owen, Cornwell, Eilek GHz GHz

9 Wide Bandwidths 2:1 bandwidth ratios … with LOTS of channels Sensitivity UV-coverage Spectral index & curvature Spectral index Spectral curvature Rau, Owen, Cornwell, Eilek Stokes I VLA/C GHz (16x30 mins)

10 Wide Bandwidths 2:1 bandwidth ratios … with LOTS of channels Sensitivity UV-coverage Spectral index & curvature Polarization & rotation measures Spectral lines & redshifts TA*TA* Kaifu et al., GHz 0.1 GHz

11 Wide Bandwidths 2:1 bandwidth ratios … with LOTS of channels Sensitivity UV-coverage Spectral index & curvature Polarization & rotation measures Spectral lines & redshifts … all the time! H (McClintock et al. 2007) Radio Soft X-ray

12 Status & schedule

13 Current status All fiber laid 21 EVLA antennas now in use -- account for >70% of ant-hours All feed horns fabricated for L, C, Ka; S and Ku underway 9 Ka-band, 2 S-band receivers deployed – L-band prod’n begins 2009 – Ku-band prototype under development OMTs meet specifications (L, C, S); X-band design almost complete LO/IF ahead of schedule 8-bit (1 GHz) samplers installed; first 3-bit (2 GHz) due in June Real-time software on track (migrated from Modcomps; Proposal, ObsPrep, Scheduler, Archive Tools; WIDAR systems integration) Post-processing software looking good (CASA; algorithms; cluster) WIDAR correlator – Data cables & all racks installed – final hardware ordered – 10-station, 4 subband, single pol’n WIDAR-0 fringing nicely (March 6)

14 Schedule: Growth of New Capability Interim receivers not shown

15 Summary Project is going well Financial health of the project is good Technical issues largely resolved Project is on schedule: – Antenna retrofits will be complete in Q3 CY2010 – Receiver installation complete in Q4 CY2012 – Correlator scheduled for completion in Q1 CY2010 – Software development on track to support commissioning and early science

16 Will it work?

17 Efficiency and Tsys Results Band (GHz) TsysAperture Effic. Req’dActual # Req’dActual # L1 – 226TBD – 0.45 S2 – – 28*.62~0.52* C4 – X TBD.56TBD Ku TBD.54TBD K Ka Q Blue = System tested and in place, or under installation. Red = Prototypes to be tested in 2009 * Preliminary result # Range over the band

18 C and Ka Band Sensitivity Detail Sensitivity as a function of frequency: Colored lines are derived via correlation coefficients Black line with dots are from direct antenna measurements. Ka-Band C-Band Project Requirement

19 C and Ka-Band Cross-Polarization Antenna ‘D-Term’ polarization with the new OMT design close to the specs at C-band. Ka-band polarization, with waveguide OMT meets specs, except at the band edges.

20 Pol’n stability: C-Band I V Q U N7027 is a planetary nebula – no polarization is expected. D-Configuration MHz. Data taken in pieces over 16 days. Phase self-calibration, flat amplitude calibration. Single polarization solution. Peak 4637 mJy 3.6 mJy 1.01 mJy 1.02 mJy Pk/I.07 %.025%.025% Polarization images are (nearly) noise-limited!

21 Pol’n stability: L-Band (1485 MHz) Peak = mJy,  = 0.21 mJy Max background object = 24 mJy Peak = 4 mJy,  = 0.8 mJy Peak at 0.02% level – but not noise limited! IQ 3C147 is unpolarized 6 hours’ continuum data with interim L-band polarizers Single pol’n solution

22 Bandpass Phase and Amplitude Stability From the prototype WIDAR correlator, observations at 6cm of 3C84 – a strong calibrator – with four antennas. Residual ripple in vector sum meets requirements. Observations made hourly, each 20 minutes long. Bandpass calibration done each 10 minutes. Vector averaged spectrum shown. Edge channels not shown.

GHz MHz 8192 x 62.5 kHz (13 km/s for local HI) 512 MHz

GHz MHz 8192 x 62.5 kHz (13 km/s for local HI) HI VLA polarizer satellites ABQ radars 512 MHz

GHz MHz 8192 x 62.5 kHz (13 km/s for local HI) HI VLA polarizer satellites ABQ radars Current VLA: kHz 512 MHz

GHz MHz 8192 x 62.5 kHz (13 km/s for local HI) Final EVLA: – 512 MHz (z=0-0.3) 7.8 kHz (1.7 km/s) HI VLA polarizer satellites ABQ radars Current VLA: kHz 512 MHz

GHz MHz (one 8 MHz subband) 4096 x 1.95 kHz (0.4 km/s)

GHz 8 x 8 MHz subbands 8 x 4096 channels – Avg’d x2 (3.9 kHz) – or x64 (470 kHz) Zoomed in here! Tau~ MHz Tau~ MHz 32 km/s17 km/s Tau~ MHz 430 km/s

GHz 8 x 8 MHz subbands 8 x 4096 channels – Avg’d x2 (3.9 kHz) – or x64 (470 kHz) Zoomed in here! Full EVLA: – 64 independently tunable subband pairs – Different bandwidth & resolution for each subband pair Tau~ MHz Tau~ MHz 32 km/s17 km/s Tau~ MHz 430 km/s

30 22 GHz MHz 8192 x 125 kHz (1.7 km/s) Full EVLA: – 8 GHz (BWR 1.5:1) – Full pol’n – 8192 x 1 MHz (14 km/s) 1 GHz

31 Recirculation: Orion water masers 64 MHz, x2 recirc. – kHz/channel 1.4% shown here

32 Image not limited by closure errors – 4 Jy “dot” – 2hr10min on-source MHz Self-cal’d image Peak:rms= 72,800:1

33 Deep image of a blank field J MHz 2.3 hours on-source Rms in 125 kHz: 2.84 mJy/beam Rms in 103 MHz (825 channels): 0.11 mJy/bm Rms in 825 MHz (825x8 channels): mJy/bm

34 WIDAR-0 first fringes with 8 antennas Fringes with 8 antennas, 4 subbands: 19mar09 (3C273 5 GHz) Example: Antenna 2, subband

35 Backup slides

36 RSRO capabilities: per subband, no recirculation In the end WIDAR will provide 64 completely independent subband pairs (independent tuning, bandwidth, pol’n products, etc.) Sub-band BW (MHz) Number of poln. products Number of channels/poln product Channel width (kHz) Channel width (kms -1 at 1 GHz) Total velocity coverage (kms -1 at 1 GHz) / (GHz)38,400/ (GHz) , , , , ,

37 RSRO capabilities: per subband, with recirculation In the end WIDAR will provide 64 completely independent subband pairs (independent tuning, bandwidth, pol’n products, numbers of channels, etc.) Sub-band BW (MHz)00 Number of poln. products Number of channels/poln product Channel width (kHz) Channel width (kms -1 at 1 GHz) Total velocity coverage (kms -1 at 1 GHz) / (GHz)38,400/ (GHz) , , , , ,

38 EVLA Review March Correlator Rack Installation, Aug 2008

39 EVLA Review March Correlator Room Infrastructure

40 RFI: correlator linearity WIDAR designed to provide more than 50 dB linearity. Early tests with the PTC are very encouraging Left: Scalar averaged spectrum of 3C84, showing INMARSAT Right: Closeup, showing astronomical signal between emissions. There is no sign of correlator saturation, at a level 40 dB below the peak signal strength.

GHz: continuum + RFI 1 GHz

42 Cygnus A: MS-MFS Rau, Owen, Cornwell, Eilek Stokes ISpectral Index

43 Cygnus A: MS-MFS Rau, Owen, Cornwell, Eilek Stokes ISpectral Index Carilli et al. 1991: VLA A+B+C+D, GHz 1 arcsec resolution)

44 Data Rates and Volumes Driver Target Date % time Max rate (Mby/s) Mean rate (Mby/s) Volume (Tby/yr) Now PTCAug08small8n/a WIDAR0Mar09small MHz bandwidth; 1024 channels max; 1 sec min dump (OSRO) Mar GHz bandwidth; 8096 channels max; 0.1 sec min dump (RSRO) Mar GHz bandwidth; channels max; 0.1 sec min dump; ~10 antennas with 3-bit samplers (RSRO) Jun GHz bandwidth; channels max; 0.1 sec min dump (RSRO) Oct GHz bandwidth; 8096 channels max; 0.1 sec min dump (OSRO) Jun GHz bandwidth; channels max; 0.1 sec min dump (End of construction) Jan Early testing indicates we should have no trouble supporting these data rates

45 Wide Bandwidths 2:1 bandwidth ratios … with LOTS of channels Sensitivity UV-coverage Spectral index & curvature Polarization & rotation measures Spectral lines & redshifts … all the time! EVLA ALMA 10  in 10min. 4U (Migliari)