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首页> 外文期刊>Sensors and Actuators. B >TiO_2-based sensor arrays modeled with nonlinear regression analysis for simultaneously determining CO and O_2 concentrations at high temperatures
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TiO_2-based sensor arrays modeled with nonlinear regression analysis for simultaneously determining CO and O_2 concentrations at high temperatures

机译:基于TiO_2的传感器阵列采用非线性回归分析建模,可同时确定高温下的CO和O_2浓度

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Responses of TiO_2-based sensor arrays were analyzed using kernel ridge regression modeling to determine the concentrations of CO and O_2 in gas mixtures at 873 K. Two variations of a two-sensor combination were studied. In each array, a La_2O_3-doped TiO_2 sensor was used whereas the second sensor in the array was a CuO-La_2O_3-doped TiO_2 sensor, doped with different levels of copper. In sensor array I, 2 wt.% CuO was used, while 8 wt.% CuO was used in the second. Sensor array I was used to demonstrate the kernel ridge regression methodology The concept of orthogonality of sensors was developed, which is a quantitative measure of how well the sensor array can discriminate between the two gases of interest. This model was then used to extract the concentrations of CO and 02 in a gas mixture over ranges of 2-10% O_2 and 250-1000 ppm CO using the second sensor array. Prediction ability was found to be reasonable over certain concentration ranges and was determined by the orthogonality of the sensor responses.
机译:使用核脊回归模型分析了基于TiO_2的传感器阵列的响应,以确定873 K下混合气体中CO和O_2的浓度。研究了两种传感器组合的两种变化形式。在每个阵列中,使用了掺杂La_2O_3的TiO_2传感器,而阵列中的第二个传感器是掺杂了不同水平铜的CuO-La_2O_3掺杂的TiO_2传感器。在传感器阵列I中,使用2 wt。%的CuO,而在第二个中使用8 wt。%的CuO。传感器阵列I用于演示核岭回归方法。开发了传感器正交性的概念,这是对传感器阵列可以区分两种目标气体的良好程度的定量度量。然后,使用第二个传感器阵列,使用该模型提取2-10%O_2和250-1000 ppm CO范围内的混合气体中CO和02的浓度。发现预测能力在某些浓度范围内是合理的,并且由传感器响应的正交性确定。

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