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Optical Architecture of the new generation Infrared Atmospheric Sounder Interferometer (IASI-NG)

机译:新一代红外大气探测仪(IASI-NG)的光学架构

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The Infrared Atmospheric Sounder Interferometer (IASI) is a Fourier Transform Spectrometer (FTS) working in the [3.6μm, 15.5μm] range, dedicated to Numerical Weather Prediction (NWP), atmospheric chemistry and climate monitoring. The second flight model (2 out of 3) is now in orbit and operational, as a payload of the MetOp-B satellite. A new generation of instrument (IASI-NG) to continue the IASI mission with increased performances is currently investigated by the French Space Agency (CNES). The performance objective is mainly a spectral resolution and a radiometric error divided by two compared with the IASI ones. Many different concepts of FTS were studied to try to fulfill these challenging requirements. This paper presents the different envisaged optical architecture and associated trade off. The major issue of the concept is to manage the so-called self-apodization of the interferogram and the associated degradation of the spectral resolution induced by the wider Field of View (FoV) and the longer Optical Path Difference (OPD). Increasing these two quantities have very constraining consequences on the optical architecture. Another critical point is the control of straylight which is quite severe and which has been taken into account early in the optical design. To assess the performances of the interferometer, different optical models were built combining analytical approach with ray tracing technics. We will describe the impacts of the demanding spectral requirements on the optical components and our analyses based on these models will be presented.
机译:红外大气探测仪(IASI)是一种傅立叶变换光谱仪(FTS),工作在[3.6μm,15.5μm]范围内,致力于数值天气预报(NWP),大气化学和气候监测。作为MetOp-B卫星的有效载荷,第二个飞行模型(每3个中的2个)现在正在运行并处于运行状态。法国航天局(CNES)目前正在研究新一代仪器(IASI-NG),以提高其性能来继续执行IASI任务。性能目标主要是光谱分辨率和辐射误差,与IASI相比要除以2。对FTS的许多不同概念进行了研究,以尝试满足这些具有挑战性的要求。本文介绍了设想的不同光学架构以及相关的折衷方案。这个概念的主要问题是要处理所谓的干涉图的自动变迹以及由较宽的视场(FoV)和较长的光程差(OPD)引起的光谱分辨率下降。增大这两个数量会对光学结构产生非常严重的影响。另一个关键点是杂散光的控制,这非常严格,并且在光学设计的早期就已经考虑到了。为了评估干涉仪的性能,建立了将分析方法与射线追踪技术相结合的不同光学模型。我们将描述苛刻的光谱要求对光学组件的影响,并将基于这些模型进行分析。

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