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On the Inherent Variability of Particulate Matter Concentrations on Small Scales and the Consequences for Miniaturized Particle Sensors

机译:小型粒度颗粒物质浓度的固有变异及小型化粒子传感器的后果

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Despite all the evident benefits of miniaturized particulate matter (PM) sensors, an inherent drawback exists in the uncertainty and validity of the measurement, which is closely related to the discrete nature of particulates suspended in air. The miniaturization of these devices not only leads to a smaller footprint for the devices themselves but also to a smaller volume of air being sampled. Even if a perfect measurement system is assumed, an uncertainty lies in assigning a supposedly representative particle concentration value to an environment due to the inherent variability of PM concentrations on small scales. This stems from the fact that particles are stochastically distributed in the air, leading to a non-uniform concentration for arbitrarily small volumes. Consequently, an uncertainty exists according to counting statistics, as the number of investigated particles in a small air sample is also low. Depending on the metric, the uncertainty may be augmented, as a small number of particles cannot accurately capture the distribution of particle sizes, especially since the size distribution extends over several orders of magnitude. This distribution related uncertainty is relevant for surface and mass related metrics in addition to the uncertainty resulting from counting statistics. We detected a minor impact from the distribution of the particle mass density, which contributes to the uncertainty for mass-related metrics, such as PM1, PM2.5 and PM10.We investigated the expected measurement uncertainty by analytical means and concluded that the distribution of particle sizes, the sample size and the ambient particle concentration significantly affect the measurement uncertainty for the range of conditions considered. To the best of our knowledge, this uncertainty has not been discussed in the current literature.
机译:尽管小型化颗粒物质(PM)传感器的所有明显的益处,但在测量的不确定度和有效性中存在固有的缺点,这与悬浮在空气中的颗粒的离散性密切相关。这些装置的小型化不仅导致装置本身的少量占地面积,而且还导致较小的空气被取样。即使假设一个完美的测量系统,由于小尺度上的PM浓度的固有变异性,将假定的代表性粒子浓度值分配给环境。这源于颗粒在空气中随机分布的事实,导致任意小体积的不均匀浓度。因此,根据计数统计存在不确定性,因为小空气样品中的研究颗粒的数量也很低。根据公制,可以增强不确定性,因为少量粒子不能精确地捕获粒径的分布,特别是因为尺寸分布延伸超过几个幅度。除了计算统计数据的不确定性之外,该分布相关的不确定性对于表面和质量相关度量是相关的。我们检测到粒子质量密度分布的微小影响,这有助于质量相关的指标的不确定性,例如PM1,PM2.5和PM10.WE通过分析手段调查了预期的测量不确定性并得出结论粒度,样品尺寸和环境颗粒浓度显着影响了考虑范围的测量不确定性。据我们所知,这种不确定性尚未在目前的文献中讨论。

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