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Measuring Gas Temperature in Highly Particle Laden Flow Using Terahertz Spectroscopy

机译:使用太赫兹光谱法测量高颗粒流中的气体温度

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We developed two methods to use terahertz (THz) spectroscopy to perform gas temperature measurement: using the area ratio of two H2O vapor absorbance peaks, and using the relative time delay of the THz signal, both of which change as a function of temperature. Both methods can be used in situations with high particle loading that would block traditional laser signals and degrade thermocouple performance, as THz signals do not attenuate due to particle scattering. The absorbance peak ratios were tested in the frequency range of 0.5-0.8 THz at temperatures of 523-773 K. The relationship between the gas temperature and line strength ratio of the peaks match those calculated using the HITRAN database, but has high uncertainty due to THz source instability. The time delay was tested at a frequency of 0.5 THz and temperatures of 293-773 K, and is used to determine temperature by calculating the index of refraction of the gas. It is a more accurate method, but requires knowledge of the gas composition.
机译:我们开发了两种使用太赫兹(THz)光谱法进行气体温度测量的方法:使用两个H2O蒸汽吸收峰的面积比,以及使用THz信号的相对时间延迟,这两种方法都随温度而变化。由于太赫兹信号不会由于粒子散射而衰减,因此两种方法都可以用于高粒子负载情况下,这些情况会阻塞传统的激光信号并降低热电偶性能。在523-773 K的温度下,在0.5-0.8 THz的频率范围内测试了吸光度峰值比率。气体温度和峰值的线强度比之间的关系与使用HITRAN数据库计算的那些相匹配,但由于存在不确定性,因此太赫兹源不稳定。在0.5 THz的频率和293-773 K的温度下测试了时延,并通过计算气体的折射率来确定温度。这是一种更准确的方法,但需要了解气体成分。

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