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Long-term Field Evaluation of Low-cost Particulate Matter Sensors in Nanjing

机译:南京低成本颗粒物传感器的长期现场评估

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Low-cost particulate matter (PM) sensors can be widely deployed to measure aerosol concentrations at higher spatial and temporal resolutions than traditional instruments, but they need to be carefully calibrated under ambient conditions. In this study, a long-term field experiment was conducted from December 2015 to May 2017 at a site in Nanjing to evaluate the capabilities of in-house built low-cost PM monitors using the Shinyei PPD42NS sensor for ambient PM_(2.5) monitoring. A BAM-1020 particulate monitor was co-located with the low-cost sensors to provide reference readings. Least-square regressions with linear and power-law functions, and an artificial neural network (ANN) technique were used to convert electrical instrument readings to ambient aerosol concentrations. Applying the ANN technique resulted in the best estimation of the hourly PM_(2.5) (R~(2) = 0.84; mean normalized bias = 12.7% and mean normalized error (MNE) = 29.7%). The low-cost sensors displayed relatively good performance with high aerosol concentrations but larger errors with concentrations below 35 μg m~(–3). High humidity (RH > 75%) can cause a larger MNE for these sensors, but the impact of temperature was negligible in this study. A clear sensor deterioration trend was observed during the 18-month field calibration. High correlations were found between the data from a single low-cost sensor and the data from the BAM-1020 when the low-cost sensor was individually calibrated, but the correlations between measurements taken by different low-cost sensor units were only moderate, possibly due to internal sensor variations. The results suggest that these low-cost sensors can measure ambient PM_(2.5) concentrations with an acceptable level of accuracy, which can and should be improved by calibrating each sensor individually. Special attention should be paid to the accuracy of these sensors after long-term application and in highly humid environments.
机译:低成本颗粒物(PM)传感器可以广泛部署,以比传统仪器更高的时空分辨率来测量气溶胶浓度,但需要在环境条件下仔细校准它们。在这项研究中,从2015年12月到2017年5月在南京的一个地点进行了长期的现场试验,以评估使用Shinyei PPD42NS传感器对环境PM_(2.5)进行监测的内置低成本PM监测器的功能。将BAM-1020微粒监测器与低成本传感器放置在同一地点,以提供参考读数。具有线性和幂律函数的最小二乘回归以及人工神经网络(ANN)技术用于将电子仪器读数转换为环境气溶胶浓度。应用ANN技术可以对每小时的PM_(2.5)进行最佳估计(R〜(2)= 0.84;平均归一化偏差= 12.7%,平均归一化误差(MNE)= 29.7%)。低成本传感器在气溶胶浓度较高时表现出相对较好的性能,但在浓度低于35μgm〜(–3)时误差较大。高湿度(RH> 75%)会导致这些传感器的MNE较大,但在这项研究中温度的影响可以忽略不计。在18个月的现场校准过程中,观察到明显的传感器劣化趋势。当单独校准低成本传感器时,在单个低成本传感器的数据与BAM-1020的数据之间发现高度相关,但是不同低成本传感器单元进行的测量之间的相关性仅适中,可能由于内部传感器的变化。结果表明,这些低成本传感器可以以可接受的精度水平测量环境PM_(2.5)浓度,可以而且应该通过单独校准每个传感器来改善这种浓度。长期使用后以及在高度潮湿的环境中,应特别注意这些传感器的精度。

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