Development of hyperspectral camera for auroral imaging (HySCAI)

被引:0
|
作者
Yoshinuma, M. [1 ]
Ida, K. [1 ]
Ebihara, Y. [2 ]
机构
[1] Natl Inst Nat Sci, Natl Inst Fus Sci, Toki, Gifu 5095292, Japan
[2] Kyoto Univ, Res Inst Sustainable Humanosphere RISH, Uji, Kyoto 6110011, Japan
来源
EARTH PLANETS AND SPACE | 2024年 / 76卷 / 01期
关键词
Aurora; Hyperspectral camera; Galvanometer mirror; Spectrum; Liquid crystal filter; Precipitating electron energy; MESOSPHERE THERMOSPHERE IMAGERS; B RED AURORA; ROCKET OBSERVATIONS; EMISSION; ELECTRONS; SPECTRA; ONBOARD; RATIO; NM;
D O I
10.1186/s40623-024-02039-y
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
The hyperspectral camera for auroral imaging (HySCAI), which can provide a two-dimensional (2D) aurora image with full spectrum, was developed to study auroral physics. HySCAI consists of an all-sky lens, monitor camera, galvanometer scanner, grating spectrograph, and electron multiplying charge coupled device (EM-CCD). The galvanometer scanner can scan a slit image of the spectrograph on the all-sky image plane in the direction perpendicular to the slit. HySCAI has two gratings; one is 500 grooves/mm for a wide spectral coverage of 400-800 nm with a spectral resolution (FWHM) of 2.1 nm, and the other is 1500 grooves/mm for a higher spectral resolution of 0.73 nm with a narrower spectral coverage of 123 nm. The absolute sensitivity is 2.1 count/s/R with 4 x 4 binning (256 x 340 image) at 557.7 nm. The exposure time depends on the brightness of the aurora emission and is typically 64 s for a 2D image (0.2 s per line scan). This system has been installed at the KEOPS (Kiruna Esrange Optical Platform Site) of the SSC (Swedish Space Corporation) in Kiruna, Sweden. All-sky images with a liquid crystal filter and a sky color camera have also been installed to compensate for the poor time resolution of HySCAI. 2D aurora monochromatic images for given wavelength are obtained by reconstructing the EM-CCD image over the scan period. HySCAI has the advantage of providing a 2D image of intensity for a weak emission line, which appears on top of a high background emission without the contamination from other emissions, which is usually difficult in a system with a bandpass filter. As the first light results, monochromatic images of N-2(+) 1NG (0, 1) (427.8 nm), N-2(+) 1NG (0, 2) (470.9 nm), H-beta (486.1 nm), N II (500.1 nm), N I (D-2) (520.0 nm), O I (S-1) (557.7 nm,), NaD (589.3 nm), O I (D-1) (630.0 nm), and N-2(+) 1NG (670.5 nm) emission intensity were measured. We estimated the precipitating electron energy from a ratio of I(630.0 nm)/I(427.8 nm) to be 1.6 keV.
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页数:16
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