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Retrieval of Aerosol Size Distributions From In Situ Particle Counter Measurements: Instrument Counting Efficiency and Comparisons With Satellite Measurements

机译:从原位计数器测量反演气溶胶尺寸分布:仪器计数效率和与卫星测量的比较

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摘要

The method to derive aerosol size distributions from in situ stratospheric measurements from the University of Wyoming is modified to include an explicit counting efficiency function (CEF) to describe the channel‐dependent instrument counting efficiency. This is motivated by Kovilakam and Deshler's (2015, ) discovery of an error in the calibration method applied to the optical particle counter (OPC40) developed in the late 1980s and used from 1991 to 2012. The method can be applied to other optical aerosol instruments for which counting efficiencies have been measured. The CEF employed is the integral of the Gaussian distribution representing the instrument response at any one aerosol channel, the aerosol counting efficiency. Results using the CEF are compared to previous derivations of aerosol size distributions (Deshler et al., 2003, ) applied to the measurements before and after Kovilakam and Deshler's correction of number concentration for the OPC40 calibration error. The CEF method is found, without any tuning parameter, to reproduce or improve upon the Kovilakam and Deshler's results, thus accounting for the calibration error without any external comparisons other than the laboratory determined counting efficiency at each aerosol channel. Moments of the new aerosol size distributions compare well with aerosol extinctions measured by Stratospheric Aerosol and Gas Experiment II and Halogen Occultation Experiment in the volcanic period 1991–1996, generally within ±40%, the precision of OPC40 moments, and in the nonvolcanic period after 1996, generally within ±20%. Stratospheric Aerosol and Gas Experiment II and Halogen Occultation Experiment estimates of aerosol surface area are generally in agreement with those derived using the new CEF method.
机译:怀俄明大学从平流层原位测量获得气溶胶粒径分布的方法经过修改,包括显式计数效率函数(CEF),用于描述与通道有关的仪器计数效率。这是受到Kovilakam和Deshler(2015,)的启发而发现的,该校准方法适用于1980年代后期开发并于1991年至2012年使用的光学粒子计数器(OPC40)的校准方法。该方法可以应用于其他光学气溶胶仪器已测量其计数效率。使用的CEF是高斯分布的积分,代表在任何一个气溶胶通道上的仪器响应,气溶胶计数效率。将使用CEF的结果与先前在Kovilakam和Deshler针对OPC40校准误差校正浓度浓度之前和之后的测量中应用的气溶胶粒径分布的推导(Deshler等人,2003年)进行了比较。发现CEF方法无需任何调整参数即可重现或改进Kovilakam和Deshler的结果,从而无需实验室进行比较即可确定校准误差,而无需任何外部比较即可确定每个气溶胶通道的计数效率。新的气溶胶尺寸分布的时刻与平流层气溶胶和气体实验II和卤素掩星实验在1991-1996年的火山期间测得的气溶胶绝灭相比较,通常在±40%以内,OPC40矩的精度以及在之后的非火山期1996年,通常在±20%以内。平流层气溶胶和气体实验II和卤素掩星实验的气溶胶表面积估算值与使用新的CEF方法得出的估算值基本一致。

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