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首页> 外文期刊>Journal of Harbin Institute of Technology >Multispectral thermometry based on neural network
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Multispectral thermometry based on neural network

机译:基于神经网络的多光谱测温

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摘要

In order to overcome the effect of the assumption between emissivity and wavelength on the measurement of true temperature and spectral emissivity for most engineering materials, a neural network based method is proposed for data processing while a blackbody furnace and three optical filters with known spectral transmittance curves were used to make up a true target. The experimental results show that the calculated temperatures are in good agreement with the temperature of the blackbody furnace, and the calculated spectral emissivity curves are in good agreement with the spectral transmittance curves of the filters. The method proposed has been proved to be an effective method for solving the problem of true temperature and emissivity measurement, and it can overcome the effect of the assumption between emissivity and wavelength on the measurement of true temperature and spectral emissivity for most engineering materials.
机译:为了克服发射率和波长之间的假设对大多数工程材料的真实温度和光谱发射率的测量的影响,提出了一种基于神经网络的数据处理方法,同时黑体炉和三个具有已知光谱透射率曲线的光学滤光片被用来组成一个真正的目标。实验结果表明,计算出的温度与黑体炉的温度吻合良好,光谱发射率曲线与滤光片的光谱透射率曲线吻合良好。实践证明,所提出的方法是解决真实温度和发射率测量问题的有效方法,可以克服大多数工程材料中发射率和波长假设对真实温度和光谱发射率测量的影响。

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