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High Precision Synchronous Detection Method for Multi-gas detection using a Single Laser

机译:单激光多气体检测的高精度同步检测方法

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There are two main drawbacks seen in the use of the multi-gas detection method based on the tuneable diode laser absorption spectroscopy (TDLAS). The first is that multiple lasers have traditionally been employed in the detection system, which means not only the system cost, but also the system response time is increased. The second major issue is the existence of a number of kinds of cross interference, and thus the sensitivity and accuracy of the existing multi-component gas detection approach has been greatly restricted, and this has become a technical bottleneck for practical multi component gas detection. To address this, a synchronous detection technology for a high precision multi-component gas detection scheme using a single light source is reported. By measuring the spectral absorption feature of each individual gas at different concentrations, the relationship of each gas sample present to the spectral absorption value can be established and the concentrations of each individual gas can be calculated. This novel method has been shown to improve the precision achieved in the detection of the multi-component gas samples by20%, compared with the previous precision measured, with the induction in the interference effects on the measurements due to the different gases present, while at the same time reducing the detection cost and response time.
机译:使用基于可调谐二极管激光吸收光谱(TDLAS)的多气体检测方法时,有两个主要缺点。首先是传统上在检测系统中使用了多个激光器,这不仅意味着系统成本增加,而且系统响应时间也增加了。第二个主要问题是存在多种交叉干扰,因此,现有多组分气体检测方法的灵敏度和准确性受到了极大的限制,这已成为实用的多组分气体检测的技术瓶颈。为了解决这个问题,报道了一种用于使用单个光源的高精度多组分气体检测方案的同步检测技术。通过测量每种单独气体在不同浓度下的光谱吸收特征,可以建立每种气体样品与光谱吸收值之间的关系,并可以计算每种单独气体的浓度。与以前测得的精度相比,该新方法已证明将多组分气体样品的检测精度提高了20%,并且由于存在不同的气体,因此对测量产生干扰影响同时降低了检测成本和响应时间。

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