光程长度和压力对O3吸收截面的影响与绿色通信

Michael David, P. Enenche, C. Alenoghena, M. H. Ibrahim, Sevia M. Idrus, T. Marcus
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引用次数: 0

摘要

臭氧是一种温室气体。其浓度的准确测量取决于臭氧气体吸收截面的正确值。然而,在文献中,差异和不一致与臭氧气体吸收截面有关。在文献中,关于压力对压力小于100毫巴和大于100但小于1000毫巴的可见光谱的影响的信息是不可用的。因此,创造了一个信息的差距,这一手稿的目的是填补。这就是本文所要解决的问题。本文采用的是SpectralCalc仿真方法。利用spectralcalc.com上的HITRAN 2012模拟器模拟臭氧气体吸收截面,以确定可见光谱中两个峰值波长的光程长度和压力的同时影响。在光程长度为10 ~ 120 cm的情况下,模拟结果表明,对于长度为10 ~ 120 cm的气体电池,峰值处的最佳吸收截面值分别为:603 nm处5.1084×10-25 m2/分子和575 nm处4.7182×10-25 m2/分子。臭氧气体吸收截面在603 nm处变为5.1058×10-25 m2/分子的恒定值,在575 nm处变为4.7158×10-25 m2/分子的压力值与光程长度有关。对于所考虑的所有长度的气体电池,5.1084×10-25 m2/分子和5.1058×10-25 m2/分子之间的百分比差异为0.05%。同样,对于所考虑的所有长度的气体电池,4.7182×10-25 m2/分子和4.7158×10-25 m2/分子之间的百分比差异也为0.05%。这些结果对高精度、高精度的臭氧气体测量具有重要意义。此外,臭氧气体的有效测量是绿色通信的直接增强。
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The concurrent upshot of optical path-length and pressure on O3 absorption cross-section in relation to green communication
Ozone gas is a greenhouse gas. Accurate measurement of its concentration is dependent on the right value of the ozone gas absorption cross-section. In the literature, discrepancies and inconsistencies have been however linked with ozone gas absorption cross-section. In the literature, information on the pressure effect on pressures less than 100 mbar and greater than 100 but less than 1000 mbar is not available for the visible spectrum. Thus, creating an information gap which this manuscript is intended to fill up. This is the problem that has been addressed in this present work. The method of simulation with SpectralCalc is the method adopted for the present work. HITRAN 2012 simulator, available on spectralcalc.com, was used in simulating the ozone gas absorption cross-section to determine the simultaneous effect of optical path length and pressure at two peak wavelengths in the visible spectrum. Simulation outcomes were obtained for an optical path length of 10 cm to 120 cm shows that the optimum absorption cross-section value of 5.1084×10-25 m2/molecule at 603 nm and 4.7182×10-25 m2/molecule at 575 nm for gas cells length between 10 cm and 120 cm are obtained at peak points. Pressure values at which ozone gas absorption cross-section becomes a constant value of 5.1058×10-25 m2/molecule at 603 nm and 4.7158×10-25 m2/molecule at 575 nm is optical path length dependent. The percentage difference between 5.1084×10-25 m2/molecule and 5.1058×10-25 m2/molecule is 0.05% for all lengths of gas cells considered. Similarly, the percentage difference between 4.7182×10-25 m2/molecule and 4.7158×10-25 m2/molecule is also 0.05% for all lengths of gas cells considered. These results are relevant for high accuracy and high precision ozone gas measurements. Furthermore, efficient measurement of ozone gas is a direct enhancement of green communication.
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期刊介绍: International Journal of Advances in Engineering Sciences and Applied Mathematics will be a thematic journal, where each issue will be dedicated to a specific area of engineering and applied mathematics. The journal will accept original articles and will also publish review article that summarize the state of the art and provide a perspective on areas of current research interest.Articles that contain purely theoretical results are discouraged.
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