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首页> 外文期刊>Sensors and Actuators. B, Chemical >Optimised temperature modulation of metal oxide micro-hotplate gas sensors through multilevel pseudo random sequences
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Optimised temperature modulation of metal oxide micro-hotplate gas sensors through multilevel pseudo random sequences

机译:通过多级伪随机序列优化金属氧化物微热板气体传感器的温度调制

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摘要

We show how it is possible to optimise a multi-frequency signal to be used in the modulation of the operating temperature of an integrated gas sensor microarray. In the first step, a multilevel pseudo random sequence (ML-PRS), which allows for modulating the operating temperature of the sensors in a wide frequency range, is used to obtain an estimate of the impulse response of each microsensor-gas system. ML-PRS are interesting because they help to reduce the effects of noise and non-linearity as experienced with gas sensors. In the second step, by analysing the spectral components of the impulse response estimates, the modulating frequencies that better help in discriminating and quantifying the gases and gas mixtures considered are found. Finally, by selecting a subset of the best modulating frequencies, an optimised multi-frequency temperature-modulating signal can be synthesised. The method is illustrated by analysing different concentrations of NH_3, NO_2 and their mixtures using a microarray of WO_3 -based gas sensors, but it can be further applied to any given gas analysis problem.
机译:我们展示了如何优化用于集成气体传感器微阵列工作温度调制的多频信号。第一步,使用多级伪随机序列(ML-PRS)来在较宽的频率范围内调制传感器的工作温度,以获取每个微传感器-气体系统的脉冲响应的估算值。 ML-PRS很有趣,因为它们有助于减少噪声和非线性的影响,如气体传感器所经历的那样。在第二步中,通过分析脉冲响应估计值的频谱分量,找到了更好地帮助区分和量化所考虑的气体和气体混合物的调制频率。最后,通过选择最佳调制频率的子集,可以合成优化的多频温度调制信号。通过使用基于WO_3的气体传感器的微阵列分析不同浓度的NH_3,NO_2及其混合物来说明该方法,但该方法可以进一步应用于任何给定的气体分析问题。

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