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Practical field calibration of portable monitors for mobile measurements of multiple air pollutants

机译:便携式监测仪的实际现场校准,用于多种空气污染物的移动测量

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摘要

To reduce inaccuracies in the measurement of air pollutants by portable monitors it is necessary to establish quantitative calibration relationships against their respective reference analyser. This is usually done under controlled laboratory conditions or one-off static co-location alongside a reference analyser in the field, neither of which may adequately represent the extended use of portable monitors in exposure assessment research. To address this, we investigated ways of establishing and evaluating portable monitor calibration relationships from repeated intermittent deployment cycles over an extended period involving stationary deployment at a reference site, mobile monitoring, and completely switched off. We evaluated four types of portable monitors: Aeroqual Ltd. (Auckland, New Zealand) S500 O3 metal oxide and S500 NO2 electrochemical; RTI (Berkeley, CA, USA) MicroPEM PM2.5; and, AethLabs (San Francisco, CA, USA) AE51 black carbon (BC). Innovations in our study included: (i) comparison of calibrations derived from the individual co-locations of a portable monitor against its reference analyser or from all the co-location periods combined into a single dataset; and, (ii) evaluation of calibrated monitor estimates during transient measurements with the portable monitor close to its reference analyser at separate times from the stationary co-location calibration periods. Within the ~7 month duration of the study, 'combined' calibration relationships for O3, PM2.5, and BC monitors from all co-locations agreed more closely on average with reference measurements than ‘individual’ calibration relationships from co-location deployment nearest in time to transient deployment periods. ‘Individual’ calibrations relationships were sometimes substantially unrepresentative of the 'combined' relationships. Reduced quantitative consistency in field calibration relationships for the PM2.5 monitors may have resulted from generally low PM2.5 concentrations that were encountered in this study. Aeroqual NO2 monitors were sensitive to both NO2 and O3 and unresolved biases. Overall, however, we observed that with the 'combined' approach, 'indicative' measurement accuracy (±30% for O3, and ±50% for BC and PM2.5) for 1 h time averaging could be maintained over the 7-month period for the monitors evaluated here.
机译:为了减少便携式监视器测量空气污染物的不准确性,有必要针对其各自的参考分析仪建立定量校准关系。这通常是在受控实验室条件下进行的,或者是在现场与参考分析仪一起进行的一次静态静态定位,这两种方法都不能充分代表便携式监测仪在暴露评估研究中的广泛使用。为了解决这个问题,我们研究了在较长的时间内通过重复的间歇部署周期建立和评估便携式监视器校准关系的方法,这些周期涉及在参考站点上的静态部署,移动监控以及完全关闭。我们评估了四种便携式监视器:Aeroqual Ltd.(新西兰奥克兰)的S500 O3金属氧化物和S500 NO2电化学电池; RTI(美国加州伯克利)MicroPEM PM2.5;以及AethLabs(美国加利福尼亚州旧金山)的AE51黑炭(BC)。我们研究的创新之处包括:(i)比较便携式显示器相对于参考分析仪的单个主机在同一地点的校准,或者将它们合并到一个数据集中的所有主机在同一时期的校准; (ii)在瞬态测量过程中,在与固定式同位校准周期分开的时间中,在便携式监护仪靠近其基准分析仪的情况下,对校准的监护仪估算值进行评估。在研究的约7个月内,所有同位场所的O3,PM2.5和BC监测仪的“组合”校准关系与参考测量的平均一致性比最接近同位部署的“个体”校准关系更为一致及时过渡部署时期。 “个体”校准关系有时根本无法代表“组合”关系。这项研究中遇到的PM2.5浓度通常较低,可能导致PM2.5监测器的现场校准关系中定量一致性降低。 Aeroqual NO2监测仪对NO2和O3以及未解决的偏差均敏感。总体而言,我们观察到,通过“组合”方法,可以在7个月内平均保持1小时的“指示性”测量精度(O3为±30%,BC和PM2.5为±50%)此处评估的监视器的时间段。

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