On-orbit test simulation for field angle dependent response measurement of the Amon-Ra energy channel instrument

  • Seong, Sehyun (Dept. of Astronomy and Space Science, Yonsei University) ;
  • Kim, Sug-Whan (Dept. of Astronomy and Space Science, Yonsei University) ;
  • Ryu, Dongok (Dept. of Astronomy and Space Science, Yonsei University) ;
  • Hong, Jinsuk (Yongin R&D Center, Samsung Thales Co., Ltd.) ;
  • Lockwood, Mike (Dept. of Meteorology, School of Mathematical and Physical Sciences, The University of Reading)
  • Published : 2012.10.17

Abstract

The on-orbit test simulation for predicting the instrument directional responsivity was conducted by the Monte Carlo based integrated ray tracing (IRT) computation technique and analytic flux-to-signal conversion algorithms. For the on-orbit test simulation, the Sun model consists of the Lambertian scattering sphere and emitting spheroid rays, the Amon-Ra instrument is a two-channel including a broadband scanning radiometer (energy channel) and an imager with ${\pm}2^{\circ}$ FOV (visible channel). The solar radiation produced by the Sun model is directed to the instrument viewing port and traced through the dual channel optical train. The instrument model is rotated on its rotation axis and this gives a slow scan of the Sun model over the full field of view. The direction of the incident lights are fed with scanned images obtained from the visible channel instrument. The instrument responsivity was computed by the ratio of the incident radiation input to the instrument output. In the radiometric simulation, especially, measured BRDF of the 3D CPC was used for scattering effects on radiometry. With diamond turned 3D CPC inner surface, the anisotropic surface scattering model from the measured data was applied to ray tracing computation. The technical details of the on-orbit test simulation are presented together with field-of-view calibration plan.

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