首页> 外文期刊>ournal of the Meteorological Society of Japan >Method to Retrieve Single Scattering Properties of Aerosols Using Multi-Wavelength Scattering and Absorption Coefficient Data Measured by Integrating Nephelometer and Absorption Photometer
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Method to Retrieve Single Scattering Properties of Aerosols Using Multi-Wavelength Scattering and Absorption Coefficient Data Measured by Integrating Nephelometer and Absorption Photometer

机译:利用浊度计和吸收光度计综合测量的多波长散射和吸收系数数据检索气溶胶的单散射特性的方法

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 Scattering and absorption coefficients, measured with an integrating nephelometer and absorption photometer, respectively, are often used to characterize aerosols. This study developed a method for retrieving the single scattering properties of an aerosol from multiwavelength scattering and absorption data and evaluated its performance and accuracy using simulation data based on Optical Properties of Aerosols and Clouds (OPAC) models. This statistical retrieval method retrieves the volume-size distribution and the complex refractive index simultaneously, which reconstruct the measured values taking into account the angular truncation and non-ideality of the light source. These values are then used to more accurately estimate single scattering properties (scattering, absorption, and extinction coefficients: single scattering albedo (SSA); and the asymmetry factor). With no systematic (bias) error, the root mean square error (RMSE) of the measured scattering coefficient was 4.42 × 10-5 to 6.61 × 10-5 m-1, whereas the RMSE of the retrieved scattering coefficient was 9.48 × 10-6 to 1.09 × 10-5 m-1. The RMSE was thus reduced to about 20 %. The RMSE of the SSA calculated directly from the measured values was 0.014-0.021, and that of the SSA calculated from retrieved values was 0.002, corresponding to a relative error of 0.2 %. In each case, the error in the SSA calculated from the retrieved scattering and extinction coefficients was less than the SSA calculated from the measured values. Sensitivity tests of the systematic (bias) error of absorption and scattering coefficients in SSA retrieval demonstrated that, with a 10 % systematic error, the maximum difference between the true value and the retrieved SSA exceeded 0.02 for a small SSA, but with a systematic error of 3 % or 5 %, the maximum difference was small. Therefore, a systematic error of less than 5 % is desirable. The retrieved volume size distribution and complex refractive index were qualitatively similar to the original values.
机译:分别使用积分浊度计和吸收光度计测量的散射系数和吸收系数通常用于表征气溶胶。这项研究开发了一种从多波长散射和吸收数据中检索气溶胶的单散射特性的方法,并使用基于气溶胶和云光学特性(OPAC)模型的模拟数据评估了气溶胶的性能和准确性。这种统计检索方法可以同时检索体积大小分布和复折射率,从而考虑到光源的角度截断和非理想性来重构测量值。然后,将这些值用于更准确地估计单个散射特性(散射,吸收和消光系数:单个散射反照率(SSA);和不对称因子)。在没有系统(偏差)误差的情况下,测得散射系数的均方根误差(RMSE)为4.42×10-5至6.61×10-5 m-1,而获得的散射系数的RMSE为9.48×10- 6至1.09×10-5 m-1。因此,RMSE降至约20%。根据测量值直接计算出的SSA的RMSE为0.014-0.021,根据检索值计算出的SSA的RMSE为0.002,相对误差为0.2%。在每种情况下,根据检索到的散射和消光系数计算出的SSA误差均小于根据测量值计算出的SSA。对SSA检索中吸收系数和散射系数的系统(偏差)误差的敏感性测试表明,对于10%的系统误差,对于较小的SSA,真实值与所检索的SSA之间的最大差值超过0.02,但是存在系统误差3%或5%时,最大差异很小。因此,希望系统误差小于5%。检索到的体积大小分布和复折射率在质量上与原始值相似。

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