日出色球红外偏振计(SCIP) III:系统设计和性能

Y. Katsukawa, J. C. D. T. Iniesta, S. Solanki, M. Kubo, H. Hara, T. Shimizu, T. Oba, Y. Kawabata, T. Tsuzuki, F. Uraguchi, Y. Nodomi, K. Shinoda, T. Tamura, Y. Suematsu, R. Ishikawa, R. Kano, Takehiko Matsumoto, K. Ichimoto, S. Nagata, C. Noda, T. Anan, D. Súarez, María Balaguer Jiménez, A. Jiménez, J. Carrascosa, A. Feller, T. L. Riethmueller, A. Gandorfer, A. Lagg
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引用次数: 8

摘要

“日出”气球载太阳观测站携带1米孔径光学望远镜,为我们提供了一个独特的平台,在高于35公里的高度上进行紫外-可见-红外波长的连续无视觉观测。对于计划于2022年进行的下一次飞行,对焦后仪器将升级为新的近紫外(SUSI)和近红外(SCIP)光谱偏振仪,而成像光谱偏振仪可调磁仪(TuMag)能够观测可见光波长内的多条光谱线。一种名为日出色球红外分光偏振仪(SCIP)的新型分光偏振仪正在研制中,用于观测770 nm和850 nm左右的近红外波长范围。这些波长范围包含许多对太阳磁场敏感的光谱线,通过结合这些光谱线的光谱偏振数据,SCIP将能够以足够的高度分辨率获得太阳大气中的磁场和速度结构。偏振测量是在相机前使用旋转波片作为调制器和偏振分束器进行的。该系统的空间分辨率为0.2”,光谱分辨率为2 105”,在10 s积分时间内的极化灵敏度为0.03% (1σ)。为了高精度地检测微小的偏振信号,我们精心设计了光机械系统、偏振光学和调制以及板载数据处理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sunrise Chromospheric Infrared SpectroPolarimeter (SCIP) for sunrise III: system design and capability
The Sunrise balloon-borne solar observatory carries a 1 m aperture optical telescope and provides us a unique platform to conduct continuous seeing-free observations at UV-visible-IR wavelengths from an altitude of higher than 35 km. For the next flight planned for 2022, the post-focus instrumentation is upgraded with new spectro- polarimeters for the near UV (SUSI) and the near-IR (SCIP), whereas the imaging spectro-polarimeter Tunable Magnetograph (TuMag) is capable of observing multiple spectral lines within the visible wavelength. A new spectro-polarimeter called the Sunrise Chromospheric Infrared spectroPolarimeter (SCIP) is under development for observing near-IR wavelength ranges of around 770 nm and 850 nm. These wavelength ranges contain many spectral lines sensitive to solar magnetic fields and SCIP will be able to obtain magnetic and velocity structures in the solar atmosphere with a sufficient height resolution by combining spectro-polarimetric data of these lines. Polarimetric measurements are conducted using a rotating waveplate as a modulator and polarizing beam splitters in front of the cameras. The spatial and spectral resolutions are 0.2" and 2 105, respectively, and a polarimetric sensitivity of 0.03 % (1σ) is achieved within a 10 s integration time. To detect minute polarization signals with good precision, we carefully designed the opto-mechanical system, polarization optics and modulation, and onboard data processing.
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