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A Gas Mixture Prediction Model Based on the Dynamic Response of a Metal-Oxide Sensor

机译:基于金属氧化物传感器动态响应的混合气预测模型

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摘要

Metal-oxide (MOX) gas sensors are widely used for gas concentration estimation and gas identification due to their low cost, high sensitivity, and stability. However, MOX sensors have low selectivity to different gases, which leads to the problem of classification for mixtures and pure gases. In this study, a square wave was applied as the heater waveform to generate a dynamic response on the sensor. The information of the dynamic response, which includes different characteristics for different gases due to temperature changes, enhanced the selectivity of the MOX sensor. Moreover, a polynomial interaction term mixture model with a dynamic response is proposed to predict the concentration of the binary mixtures and pure gases. The proposed method improved the classification accuracy to 100%. Moreover, the relative error of quantification decreased to 1.4% for pure gases and 13.0% for mixtures.
机译:金属氧化物(MOX)气体传感器因其低成本,高灵敏度和稳定性而被广泛用于气体浓度估算和气体识别。但是,MOX传感器对不同气体的选择性低,这导致了混合物和纯净气体的分类问题。在这项研究中,将方波用作加热器波形,以在传感器上产生动态响应。动态响应的信息(包括由于温度变化导致的不同气体的不同特性)增强了MOX传感器的选择性。此外,提出了具有动态响应的多项式相互作用项混合物模型,以预测二元混合物和纯气体的浓度。所提出的方法将分类精度提高到100%。此外,纯气体的定量相对误差降至1.4%,混合物的定量相对误差降至13.0%。

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