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Multi-parameter monitoring of binary gas mixtures: Concentration and flow rate by DC excitation of thermal sensor arrays

机译:二元气体混合物的多参数监测:热传感器阵列直流激励浓度和流速

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摘要

This contribution presents a thermal sensor, which is capable of simultaneously determining gas concentrations of a binary gas mixture under flow conditions and its flow rate. The sensor design corresponds to the calorimetric principle. The multi-parameter detection is achieved by the use of two time independent excitation modes (power and temperature). Due to the developed sensor design, a flow independent, but gas sensitive region is obtained in power mode. In this flow range, the thermal conductivity is measured by analyzing the temperature of the downstream element. Gas concentration of the binary gas mixture is derived from the theoretical relationship to thermal conductivity. Afterwards, the flow rate is detected by evaluating the temperature difference between the down-and upstream temperature sensors in temperature excitation mode. This measurement technique has been successfully proven under laboratory conditions, where a flowing mixture of e.g. methane and carbon dioxide has been analyzed. The carried out measurements show an accuracy of 15% in gas concentration and of 13.3% in flow rate. This measuring method seems to be sufficient to analyze biogas in anaerobic distinctions. However, further investigation is needed to open this technique for this application. (C) 2017 Elsevier B.V. All rights reserved.
机译:该贡献呈现热传感器,其能够在流动条件下同时确定二元气体混合物的气体浓度及其流速。传感器设计对应于量热原理。通过使用两次独立励磁模式(功率和温度)来实现多参数检测。由于开发的传感器设计,在电力模式下获得了独立的流动,但是气敏区域。在该流量范围内,通过分析下游元件的温度来测量导热率。二元气体混合物的气体浓度源自与导热率的理论关系。之后,通过在温度激发模式下评估下游温度传感器之间的温差来检测流速。在实验室条件下已经成功证明了该测量技术,其中例如流动的混合物。已经分析了甲烷和二氧化碳。进行的测量显示气体浓度为15%的精度,流速为13.3%。该测量方法似乎足以分析厌氧区中的沼气。但是,需要进一步调查来打开此技术的这种技术。 (c)2017年Elsevier B.V.保留所有权利。

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