傅立叶变换光谱仪自适应控制器的设计与集成

P. Yiu, D. Keymeulen, D. Berisford, K. Hand, R. Carlson, W. Wadsworth, J. Dybwad, R. Levy
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引用次数: 2

摘要

本文介绍了一种基于独立现场可编程门阵列(FPGA)架构的红外干涉光谱仪(CIRIS)自适应控制器的设计与集成。CIRIS是对传统傅立叶变换光谱仪(FTS)的一种创新,它用一个等速旋转折射器取代了线性移动镜(迈克尔逊干涉仪的特征),可以改变入射光的相移和路径长度。这种设计消除了常规迈克尔逊设计固有的周期性加速/减速镜的需要,并允许一个紧凑而坚固的设备,使其成为行星探测任务中近红外到热红外波段(2-12 μm)的星载测量的理想选择。该仪器的嵌入式微控制器在VIRTEX-5 FPGA上实现,目的是对仪器的检测器和光学旋转编码器进行采样,以构建干涉图。随后的信号处理,包括重采样、快速傅里叶变换(FFT)、滤波和色散校正技术,实时应用于组成样本频谱。仪器的FPGA控制器与FTS一起进行了演示,以突出其在空间系统中实现的适用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design and integration of an adaptive controller for a Fourier Transform Spectrometer
This paper presents the design and integration of an adaptive controller for CIRIS (Compositional InfraRed Interferometric Spectrometer) on a stand-alone field programmable gate array (FPGA) architecture. CIRIS is a novel take on traditional Fourier Transform Spectrometers (FTS) and replaces linearly moving mirrors (characteristic of Michelson interferometers) with a constant-velocity rotating refractor to variably phase shift and alter the path length of incoming light. This design eliminates the need for periodically accelerating/decelerating mirrors inherent to canonical Michelson designs and allows for a compact and robust device, making it ideal for spaceborne measurements in the near-IR to thermal-IR band (2-12 μm) on planetary exploration missions. The instrument's embedded microcontroller is implemented on a VIRTEX-5 FPGA with the aim of sampling the instrument's detector and optical rotary encoder in order to construct an interferogram. Subsequent signal processing, including resampling, Fast Fourier Transform (FFT), filtering, and dispersion correction techniques are applied in real-time to compose the sample spectrum. The instrument's FPGA controller is demonstrated with the FTS to highlight its suitability for implementation in space systems.
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