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Particle sizing calibration with refractive index correction for light scattering optical particle counters and impacts upon PCASP and CDP data collected during the Fennec campaign

机译:用于光散射光学粒子计数器的折射率校正的粒子尺寸校准以及对Fennec活动期间收集的pCasp和CDp数据的影响

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摘要

Optical particle counters (OPCs) are used regularly for atmospheric research, measuring particle scattering cross sections to generate particle size distribution histograms. This manuscript presents two methods for calibrating OPCs with case studies based on a Passive Cavity Aerosol Spectrometer Probe (PCASP) and a Cloud Droplet Probe (CDP), both of which are operated on the Facility for Airborne Atmospheric Measurements BAe-146 research aircraft. A probability density function based method is provided for modification of the OPC bin boundaries when the scattering properties of measured particles are different to those of the calibration particles due to differences in refractive index or shape. This method provides mean diameters and widths for OPC bins based upon Mie-Lorenz theory or any other particle scattering theory, without the need for smoothing, despite the highly nonlinear and non-monotonic relationship between particle size and scattering cross section. By calibrating an OPC in terms of its scattering cross section the optical properties correction can be applied with minimal information loss, and performing correction in this manner provides traceable and transparent uncertainty propagation throughout the whole process. Analysis of multiple calibrations has shown that for the PCASP the bin centres differ by up to 30% from the manufacturer's nominal values and can change by up to approximately 20% when routine maintenance is performed. The CDP has been found to be less sensitive than the manufacturer's specification with differences in sizing of between 1.6 ± 0.8 μm and 4.7 ± 1.8 μm for one flight. Over the course of the Fennec project in the Sahara the variability of calibration was less than the calibration uncertainty in 6 out of 7 calibrations performed. As would be expected from Mie-Lorenz theory, the impact of the refractive index corrections has been found to be largest for absorbing materials and the impact on Saharan dust measurements made as part of the Fennec project has been found to be up to a factor of 3 for the largest particles measured by CDP with diameters of approximately 120 μm. In an example case, using the calibration and refractive index corrections presented in this work allowed Saharan dust measurement from the PCASP, CDP and a Cloud Imaging Probe to agree within the uncertainty of the calibration. The agreement when using only the manufacturer's specification was poor. Software tools have been developed to perform these calibrations and corrections and are now available as open source resources for the community via the SourceForge repository. © 2012 Author(s). CC Attribution 3.0 License.
机译:光学粒子计数器(OPC)通常用于大气研究,测量粒子的散射截面,以生成粒度分布直方图。本手稿基于无源腔气溶胶光谱仪探针(PCASP)和云滴探针(CDP)的案例研究,提供了两种校准OPC的方法,这两种方法均在机载大气测量设施BAe-146研究飞机上运行。当由于折射率或形状的差异而导致被测颗粒的散射特性与校准颗粒的散射特性不同时,提供了一种基于概率密度函数的方法来修改OPC仓边界。尽管粒径和散射截面之间存在高度非线性和非单调关系,但该方法基于Mie-Lorenz理论或任何其他颗粒散射理论为OPC仓提供了平均直径和宽度,而无需进行平滑处理。通过根据OPC的散射横截面进行校准,可以以最小的信息损失进行光学特性校正,以这种方式执行校正可在整个过程中提供可追溯且透明的不确定性传播。多次校准的分析表明,对于PCASP,垃圾箱中心与制造商的标称值相差最多30%,并且在进行常规维护时,中心距可能会发生大约20%的变化。已发现CDP的灵敏度低于制造商的规格,一次飞行的尺寸差异在1.6±0.8μm和4.7±1.8μm之间。在撒哈拉沙漠地区的Fennec项目过程中,校准的可变性小于执行的7个校准中的6个的校准不确定性。正如Mie-Lorenz理论所预期的那样,发现折射率校正对吸收材料的影响最大,并且作为Fennec项目的一部分对撒哈拉尘埃测量的影响被认为是最大的。对于直径约为120μm的CDP测得的最大颗粒,请参见图3。在一个示例情况下,使用本工作中介绍的校准和折射率校正,可以从PCASP,CDP和云成像探头进行撒哈拉尘埃测量,以在校准不确定性内达成一致。仅使用制造商的规范时,协议很差。已经开发了用于执行这些校准和更正的软件工具,现在可以通过SourceForge存储库将其作为社区的开源资源使用。 ©2012作者。 CC署名3.0许可。

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