Multi-coupling gap system modeling for methane detection using hollow-core photonic bandgap fibers

A. Cubillas, J. M. Lazaro, O. Conde, F. Madruga, J. López-Higuera, Marco N. Petrovich
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引用次数: 2

Abstract

Hollow-core photonic bandgap fibers (HC-PBFs) have been recently demonstrated as a powerful technology in the field of gas sensing. The long interaction path lengths achievable with these fibers are advantageous for the detection of weakly absorbing gases such as methane. However, using long path lengths yield to very high insertion times of the gas into the fiber. In this paper, an alternative configuration based on a multi-coupling gap HC-PBF system to detect methane is proposed to overcome this problem. For this purpose, a conventional configuration using one long piece of HC-PBF is compared to this novel configuration, which uses four shorter pieces of HC-PBF with the same overall length as the first configuration. The experimental results are validated theoretically modeling the normalized pressure inside the fiber. A very good correlation between the experimental data and the theoretical fit is obtained, demonstrating the feasibility of the system proposed.
利用空心芯光子带隙光纤进行甲烷探测的多耦合隙系统建模
空心光子带隙光纤(HC-PBFs)是近年来在气体传感领域发展起来的一种强有力的技术。这些光纤的长相互作用路径长度有利于检测弱吸收气体,如甲烷。然而,使用长路径长度会导致气体插入光纤的时间非常高。本文提出了一种基于多耦合间隙HC-PBF系统检测甲烷的替代配置,以克服这一问题。为此,将使用一长段HC-PBF的传统配置与使用与第一种配置相同总长度的四短段HC-PBF的新型配置进行比较。实验结果对光纤内归一化压力进行了理论模拟。实验数据与理论拟合具有很好的相关性,证明了所提出系统的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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