高光谱成像
帧速率
光学
快照(计算机存储)
光谱成像
材料科学
波长
图像分辨率
计算机科学
分光计
成像光谱仪
多光谱图像
图像处理
遥感
物理
人工智能
地质学
操作系统
图像(数学)
作者
Milad Alemohammad,Elliot R. Wainwright,Jasper R. Stroud,Timothy P. Weihs,Mark A. Foster
出处
期刊:Applied Optics
[Optica Publishing Group]
日期:2020-10-20
卷期号:59 (33): 10406-10406
被引量:7
摘要
We demonstrate a kilohertz frame rate snapshot hyperspectral imaging system suitable for high-speed imaging, which we name snapshot hyperspectral imager for emission and reactions (SHEAR). This system splits the sensor of a single high-speed camera to simultaneously capture a conventional image and a spectrally sheared response of the scene under study. Given the small, point-source-like nature of burning metal micro-particles, the spectral response of the species is captured without the need for a slit, as is needed in conventional imaging spectrometers. We pair robust image registration techniques with sparse reconstruction algorithms to computationally disentangle overlapping spectra associated with many burning particles over the course of a combustion experiment. As a proof-of-concept experiment, representative physical vapor deposited Al:Zr composite particles are ignited, and their burn evolution is recorded at a frame rate of 2 kHz using this method. We demonstrate operation over two distinct wavelength ranges spanning hundreds of nanometers in wavelength and with sub-nanometer resolution. We are able to track hundreds of individual Al:Zr particles in a single high-speed video, providing ample statistics of burn time, temperature, and AlO emission timing in a high-throughput method. The demonstrated technology is high-throughput, flexible in wavelength, inexpensive, and relatively easy to implement, and provides a much needed tool for in situ composite metal fuel diagnostics.
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