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首页> 外文期刊>Atmospheric Chemistry and Physics Discussions >Estimation of aerosol particle number distribution with Kalman Filtering a?? Part 2: Simultaneous use of DMPS, APS and nephelometer measurements
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Estimation of aerosol particle number distribution with Kalman Filtering a?? Part 2: Simultaneous use of DMPS, APS and nephelometer measurements

机译:用卡尔曼滤波估计气溶胶粒子数分布第2部分:同时使用DMPS,APS和浊度计测量

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摘要

pstrongAbstract./strong Extended Kalman Filter (EKF) is used to estimate particle size distributions from observations. The focus here is on the practical application of EKF to simultaneously merge information from different types of experimental instruments. Every 10 min, the prior state estimate is updated with size-segregating measurements from Differential Mobility Particle Sizer (DMPS) and Aerodynamic Particle Sizer (APS) as well as integrating measurements from a nephelometer. Error covariances are approximate in our EKF implementation. The observation operator assumes a constant particle density and refractive index. The state estimates are compared to particle size distributions that are a composite of DMPS and APS measurements. The impact of each instrument on the size distribution estimate is studied. Kalman Filtering of DMPS and APS yielded a temporally consistent state estimate. This state estimate is continuous over the overlapping size range of DMPS and APS. Inclusion of the integrating measurements further reduces the effect of measurement noise. Even with the present approximations, EKF is shown to be a very promising method to estimate particle size distribution with observations from different types of instruments./p.
机译:> >摘要。扩展卡尔曼滤波器(EKF)用于根据观测值估算粒径分布。这里的重点是EKF的实际应用,以同时合并来自不同类型的实验仪器的信息。每隔10分钟,将使用差动迁移粒度仪(DMPS)和空气动力学粒度仪(APS)的粒度分离测量结果以及浊度计的测量结果进行积分来更新先前的状态估算值。在我们的EKF实现中,误差协方差是近似的。观察者假定颗粒密度和折射率恒定。将状态估计值与DMPS和APS测量结果的总和的粒度分布进行比较。研究了每种仪器对尺寸分布估计的影响。 DMPS和APS的卡尔曼滤波产生了时间上一致的状态估计。在DMPS和APS的重叠大小范围内,此状态估计是连续的。包含积分测量值进一步降低了测量噪声的影响。即使采用目前的近似值,EKF也被证明是一种非常有前途的方法,利用来自不同类型仪器的观察结果来估计粒度分布。

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