Discussion on NIKA-2 beams

Page created by FXD, CK
Last updated by SL 2015-11-02, JFL 2015-11-05

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It seems to me that one important problem was not taken into account while analysing the beams: the incorrect coordinates during roughly 2 sec at beginning of each subscan (see e.g. daily reports, Oct 29-30 and my other reports during the past runs). More recent examples are shown below.

antenna-20151106s17_azErrSu4.png antenna-20151106s17_azErrSu5.png

In blue are shown the available tracking errors, in white the correct values. How large is the error of the coordinates depends on the elevation and the scanning speed. For usable obs. parameters the values may reach even 30arcsec !

In such a case the general condition for map size in the scanning direction in case of not perfectly stable receiver:

mapSize = sizeOfSource + sizeOfFOV + base

must be changed to:

mapSize = sizeOfSource + sizeOfFOV + base + 2*sizeOfErrorZone

sizeOfSource is the diameter of the to be analysed error beam (read fron the attached figures 1 to 2arcmin), sizeOfFOV is 6.5arcmin, base should be at least 3*HPBW, sizeOfErrorZone is ~2sec*scanning velocity, i.e. ~2arcmin.

This shows that only the 20arcmin maps satisfy the above condition. For smaller maps the pixels which appear at map edges must be excluded from the analysis. As the array rotates with elev in (azim,elev) different pixels are affected. (RZ, 6-Nov-2015)

If not said otherwise, we measure the beam by using the middle scan of the 3-scans sequence launched with @beammap Here are the best-of on 3 sources.

Preliminary findings

Beam maps on Mars

Beam maps on Uranus

Maps on 3C84

Beam maps

Smaller maps by JFL under poor conditions

Theoretical beams from Zemax simulations (for comparison, SL 2015-11-02 and 04)

By design of the optics the image plane is as flat and aberration-less as possible, but for such a big FoV and given the constraint on the number of lenses we can't avoid that the optimal focus surface on the image plane has a residual bowl shape, which correspond to 0.4 mm amplitude of M2 along Z between the central pixel and an edge pixel (6.5'diameter ring). But the distance along the M2 Z axis between the best central and the best average is 0.2mm (= best at the 4' diameter ring). As a consequence there's a Strehl ratio (~beam peak amplitude) variation of 10% at 1.2mm and 4% at 2mm along the FoV if the focus is on the central pixel, but these values are reduced to less than 3% at 1.2mm and less than 1% at 2mm if the focus is on the 4' diameter ring.

The images below show the 1mm band beam shape in false color and logarithmic scale, and a cross section in linear scale, for the central pixel (top) and an edge pixel (bottom) for various position of the focus (note the 2mm band beam shape is identical to the 1mm beam, but it is larger and twice less sensitive to the focus variation). For the best central focus and best average focus I also added some plots of the Strehl ratio along the FOV on the X axis of the image plane from 0 to 3.25' radius. As you can see in any case we are still significantly above the diffraction limit; in the worst case of 10% decrease of the Strehl ratio (e.i. focus on the central pixel), we convolve a 0.2 mm radius aberration spot with a 1.7 mm radius Airy pattern for the central pixel and a 0.8 mm radius aberration spot with a 1.7 mm radius Airy pattern for the edge pixel, while the aberration spot variation is at most +/- 0.1 mm on the image plane for the best average focus. Thus, the beams are always acceptable to maintain the angular resolution, but less optimal in terms of contrast on the image (e.i. dynamic, e.i. gain) if we focus on the central pixel versus the best average focus.

  1. Focus optimized on the central pixel:

    [ATTACH] Beams_NIKA2_Strehl_alongX_central_pixel_focus_1mm_band.PNG

  2. Focus optimized on the 4'FOV ring = best overall focus on the array = best central + 0.2 mm:

    [ATTACH] Beams_NIKA2_Strehl_alongX_best_average_focus_1mm_band.PNG

  3. Defocus: best central - 0.5 mm:

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  4. Defocus: best central + 0.5 mm:

    [ATTACH]

  5. Defocus: best overall + 0.5 mm:

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