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  • IOP Publishing  (2)
  • 1
    In: Research in Astronomy and Astrophysics, IOP Publishing
    Abstract: Infrared solar spectrum observed by ground-based telescopes is seriously affected by the background radiation both from the telescope and sky, relative to the visible wavelength. Its accuracy is also influenced by the spectral resolution of the Fourier transform spectrometer. In the paper, we developed a $CO_2$ gas cell and installed it in the sample compartment to calibrate the spectral resolution of the Bruker IFS-125HR at the infrared wavelength. The measured spectral resolution is \textbf{ 0.00342 $\pm 0.00086 \, cm^{-1}$ and 0.0059 $ \pm 0.00024 \, cm^{-1}$ at the wavenumber of 798 $cm^{-1}$ and 2136 $cm^{-1}$, respectively}. We also updated a fully reflected sun-light feeding system to observe the solar spectrum near the CO 4.66 $\mu m$ and Mg I 12.32 $\mu m$. By quickly pointing the sun-light feeding system about 1 degree away from the solar disk center, we are able to measure the background radiation from the telescope and the sky at Huairou Solar Observing Station. After removing the background radiation, our observed solar spectrum at CO 4.66 $\mu m$ is consistent with that from National Solar Observatory. The Mg I 12.32 $\mu m$ working line selected by the Accurate Infrared Magnetic Field Measurements of the Sun (AIMS) project is also identified. Our method is helpful not only for the spectral resolution calibration and background radiation correction of AIMS but also for other infrared astronomical telescopes.
    Type of Medium: Online Resource
    ISSN: 1674-4527
    Language: Unknown
    Publisher: IOP Publishing
    Publication Date: 2023
    detail.hit.zdb_id: 2511247-8
    SSG: 6,25
    SSG: 16,12
    Location Call Number Limitation Availability
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  • 2
    In: Research in Astronomy and Astrophysics, IOP Publishing, Vol. 23, No. 6 ( 2023-06-01), p. 065014-
    Abstract: The Solar Upper Transition Region Imager (SUTRI) onboard the Space Advanced Technology demonstration satellite (SATech-01), which was launched to a Sun-synchronous orbit at a height of ∼500 km in 2022 July, aims to test the on-orbit performance of our newly developed Sc/Si multi-layer reflecting mirror and the 2k×2k EUV CMOS imaging camera and to take full-disk solar images at the Ne vii 46.5 nm spectral line with a filter width of ∼3 nm. SUTRI employs a Ritchey–Chrétien optical system with an aperture of 18 cm. The on-orbit observations show that SUTRI images have a field of view of ∼ 41.′6 × 41.′6 and a moderate spatial resolution of ∼8″ without an image stabilization system. The normal cadence of SUTRI images is 30 s and the solar observation time is about 16 hr each day because the earth eclipse time accounts for about 1/3 of SATech-01's orbit period. Approximately 15 GB data is acquired each day and made available online after processing. SUTRI images are valuable as the Ne vii 46.5 nm line is formed at a temperature regime of ∼0.5 MK in the solar atmosphere, which has rarely been sampled by existing solar imagers. SUTRI observations will establish connections between structures in the lower solar atmosphere and corona, and advance our understanding of various types of solar activity such as flares, filament eruptions, coronal jets and coronal mass ejections.
    Type of Medium: Online Resource
    ISSN: 1674-4527
    Language: Unknown
    Publisher: IOP Publishing
    Publication Date: 2023
    detail.hit.zdb_id: 2511247-8
    SSG: 6,25
    SSG: 16,12
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
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