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A method of zero self-modification and temperature compensation for indoor air quality etection based on a software model

机译:基于软件模型的室内空气质量检测零自修复和温度补偿方法

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It is very difficult to apply non-dispersive infrared sensor to detect the indoor air quality and maintain very low zero and temperature drift over long periods. Frequently manual zero setting and calibration are required. To solve the issues of zero and temperature drift of non-dispersive infrared sensor, a software model based on zero gas intensity, reference channels intensity, standard temperature, environmental temperature, temperature drift coefficient, etc. has been established to automatically modify and compensate the zero and temperature drift existing in the long-term continuous operation of the infrared sensor. The test result and long-term application indicate the detection precision of the instrument is less than 5%F.S in various changing environmental conditions. The average detection precision of carbon dioxide has been improved from 9.26% before comprehensive processing to 1.23% after processing, while the average detection precision of methane has been improved from 10.61% before comprehensive processing to 0.70% after processing. As a result, the disadvantages existing in many gas detectors including poor stability and short calibration cycle have been overcome, thus effectively improving the detection precision and stability of the instrument and reducing the maintenance cost.
机译:将非分散红外传感器施加非分散式红外传感器以检测室内空气质量,并在长时间保持非常低的零和温度漂移。通常需要手动零设置和校准。为了解决非分散红外传感器的零和温度漂移的问题,已经建立了一种基于零气体强度,参考通道强度,标准温度,环境温度,温度漂移系数等的软件模型,以自动修改和补偿在红外传感器的长期连续运行中存在零和温度漂移。测试结果和长期应用表明仪器的检测精度在各种变化的环境条件下的仪器小于5%。二氧化碳的平均检测精度从综合处理前的9.26%提高到加工后的1.23%,而甲烷的平均检测精度从10.61%提高到加工后的0.70%。结果,已经克服了许多气体检测器存在的缺点,包括较差和短校准周期,从而有效地提高了仪器的检测精度和稳定性并降低了维护成本。

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