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Optimization design and experimental study of micro-Fourier transform spectrometer

机译:微傅立叶变换光谱仪的优化设计与实验研究

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In order to achieve the goal of miniaturization and light weight of Fourier transform spectrometer, a light-weight grid beam splitter structure was designed instead of the traditional parallel plate beam splitter. The influence of the grid edge of the grid beam splitter on spectrum reconstruction was analyzed, and the tolerance of production error was proposed. The micro-Fourier transform spectrometer was modeled and simulated, and the optimal structure of the grid beam splitter was obtained. The spectral inversion was performed by system simulation, and the restored spectrum was obtained. The spectral error introduced by the grid beam splitter was calculated. The construction and debugging of the prototype was completed, and the recovered spectrum of the actual system was obtained, which proved the feasibility of the miniaturized system. Compared with the traditional Fourier transform spectrometer, the miniaturization system has the advantages of small volume and good stability, and can be used for online monitoring.
机译:为了实现傅立叶变换光谱仪的小型化和重量重的目标,设计了轻量级栅格分离器结构而不是传统的平行板分束器。分析了网格分离器网格边缘对频谱重建的影响,提出了生产误差的公差。微傅立叶变换光谱仪被建模和模拟,获得了网格分束器的最佳结构。通过系统模拟进行光谱反转,获得恢复的频谱。计算了网格分子分离器引入的光谱误差。完成了原型的构造和调试,获得了实际系统的回收光谱,证明了小型化系统的可行性。与传统的傅里叶变换光谱仪相比,小型化系统的稳定性小,稳定性良好,可用于在线监测。

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