Remote Sensing (Sep 2024)

Design and Analysis of a Moon-Based Earth-Radiation Measurement System

  • Shuqi Li,
  • Zhitao Luo,
  • Yanfeng Liu,
  • Wei Fang,
  • Yuwei Wang,
  • Ruidong Jia,
  • Duo Wu,
  • Baoqi Song,
  • Xiaolong Yi,
  • Xin Ye

DOI
https://doi.org/10.3390/rs16183540
Journal volume & issue
Vol. 16, no. 18
p. 3540

Abstract

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This research project envisions using a lunar observation platform to measure the full-wave (0.2~100 μm) and shortwave (0.2~4.3 μm) radiation of the Earth, achieving an accurate estimation of the overall radiation budget of the Earth. Based on the lunar platform, the system analyzes Earth’s radiation characteristics and geometric attributes, as well as the sampling properties of observation times. Informed by these analyses, an Earth-facing optical radiation measurement system tailored to these specifications is designed. The optical system adopts an off-axis three-mirror configuration with a secondary image plane, incorporating a field stop at the primary image plane to effectively suppress solar stray light, scattered lunar surface light, and background radiation from the instrument itself, ensuring the satisfactory signal-to-noise ratio, detection sensitivity, and observation duration of the instrument. At the same time, stringent requirements are imposed for the surface treatments of instrument components and temperature control accuracy to further ensure accuracy. Simulation analyses confirm that the design satisfies requirements, achieving a measurement accuracy of better than 1% across the entire optical system. This Moon-based Earth-radiation measurement system, with capabilities for Earth-pointing tracking, radiation energy detection, and stray-light suppression, furnishes a more comprehensive dataset, helping to advance our understanding of the mechanisms driving global climate change

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