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Retrieving simulated volcanic, desert dust and sea-salt particle properties from two/three-component particle mixtures using UV-VIS polarization lidar and T matrix

机译:使用UV-VIS偏振激光雷达和T矩阵从两/三组分颗粒混合物中检索模拟的火山,沙漠尘埃和海盐颗粒性质

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pstrongAbstract./strong During transport by advection, atmospheric nonspherical particles, such as volcanic ash, desert dust or sea-salt particles experience several chemical and physical processes, leading to a complex vertical atmospheric layering at remote sites where intrusion episodes occur. In this paper, a new methodology is proposed to analyse this complex vertical layering in the case of a two/three-component particle external mixtures. This methodology relies on an analysis of the spectral and polarization properties of the light backscattered by atmospheric particles. It is based on combining a sensitive and accurate UV-VIS polarization lidar experiment with T-matrix numerical simulations and air mass back trajectories. The Lyon UV-VIS polarization lidar is used to efficiently partition the particle mixture into its nonspherical components, while the T-matrix method is used for simulating the backscattering and depolarization properties of nonspherical volcanic ash, desert dust and sea-salt particles. It is shown that the particle mixtures' depolarization ratio δsub p/sub differs from the nonspherical particles' depolarization ratio δsubns/sub due to the presence of spherical particles in the mixture. Hence, after identifying a tracer for nonspherical particles, particle backscattering coefficients specific to each nonspherical component can be retrieved in a two-component external mixture. For three-component mixtures, the spectral properties of light must in addition be exploited by using a dual-wavelength polarization lidar. Hence, for the first time, in a three-component external mixture, the nonsphericity of each particle is taken into account in a so-called 2?2 + 2?′ formalism. Applications of this new methodology are then demonstrated in two case studies carried out in Lyon, France, related to the mixing of Eyjafjallaj??kull volcanic ash with sulfate particles (case of a two-component mixture) and to the mixing of dust with sea-salt and water-soluble particles (case of a three-component mixture). This new methodology, which is able to provide separate vertical profiles of backscattering coefficient for mixed atmospheric dust, sea-salt and water-soluble particles, may be useful for accurate radiative forcing assessments./p.
机译:> >摘要。在通过平流运输过程中,大气非球形颗粒(例如火山灰,沙漠尘埃或海盐颗粒)经历了几种化学和物理过程,导致在偏远地区形成复杂的垂直大气层发生入侵事件的地方。在本文中,提出了一种新的方法来分析两/三组分颗粒外部混合物中这种复杂的垂直分层。这种方法依赖于对大气颗粒反向散射的光的光谱和偏振特性的分析。它基于将敏感且准确的UV-VIS偏振激光雷达实验与T矩阵数值模拟和空气质量后向轨迹相结合的基础。里昂UV-VIS偏振激光雷达用于有效地将颗粒混合物分配到其非球形组分中,而T矩阵方法用于模拟非球形火山灰,沙漠尘埃和海盐颗粒的反向散射和去极化特性。结果表明,由于混合物中存在球形颗粒,颗粒混合物的去极化率δ p 与非球形颗粒的去极化率δ ns 不同。因此,在识别出非球形颗粒的示踪剂后,可以在两组分外部混合物中获取每个非球形组分特有的颗粒反向散射系数。对于三组分混合物,还必须使用双波长偏振激光雷达来开发光的光谱特性。因此,第一次在三组分外部混合物中,在所谓的2 2 2 + 2 4′形式中考虑了每个颗粒的非球形性。然后,在法国里昂进行的两个案例研究中证明了这种新方法的应用,这些案例涉及艾亚菲亚德拉-库尔火山灰与硫酸盐颗粒的混合(两组分混合物的情况)以及粉尘与海的混合-盐和水溶性颗粒(三组分混合物的情况)。这种新方法能够为混合的大气尘埃,海盐和水溶性颗粒提供单独的反向散射系数垂直分布图,可能对准确的辐射强迫评估有用。

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