首页> 外文期刊>Journal of the Atmospheric Sciences >The Characterization of Ice Hydrometeor Gamma Size Distributions as Volumes in N-0-lambda-mu Phase Space: Implications for Microphysical Process Modeling
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The Characterization of Ice Hydrometeor Gamma Size Distributions as Volumes in N-0-lambda-mu Phase Space: Implications for Microphysical Process Modeling

机译:N-0-λ-mu相空间中体积的冰氢流星伽玛粒度分布的表征:对微物理过程建模的启示。

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Gamma distributions represent particle size distributions (SDs) in mesoscale and cloud-resolving models that predict one, two, or three moments of hydrometeor species. They are characterized by intercept (N-0), slope (lambda), and shape (mu) parameters prognosed by such schemes or diagnosed based on fits to SDs measured in situ in clouds. Here, ice crystal SDs acquired in arctic cirrus during the Indirect and Semi-Direct Aerosol Campaign (ISDAC) and in hurricanes during the National Aeronautic and Space Administration (NASA) African Monsoon Multidisciplinary Analyses (NAMMA) are fit to gamma distributions using multiple algorithms. It is shown that N-0, lambda, and mu, are not independent parameters but rather exhibit mutual dependence. Although N-0, lambda, and mu are not highly dependent on choice of fitting routine, they are sensitive to the tolerance permitted by fitting algorithms, meaning a three-dimensional volume in N-0-lambda-mu, phase space is required to represent a single SD. Depending on the uncertainty in the measured SD and on how well a gamma distribution matches the SD, parameters within this volume of equally realizable solutions can vary substantially, with N-0, in particular, spanning several orders of magnitude. A method to characterize a family of SDs as an ellipsoid in N-0-lambda-mu, phase space is described, with the associated scatter in N-0-lambda-mu, for such families comparable to scatter in N-0, lambda, and mu observed in prior field campaigns conducted in different conditions. Ramifications for the development of cloud parameterization schemes and associated calculations of microphysical process rates are discussed.
机译:伽玛分布表示中尺度和云解析模型中的粒度分布(SD),这些模型预测水流星物种的一,二或三阶矩。它们的特征是通过此类方案预测或基于对云中原位测量的SD的拟合诊断的截距(N-0),斜率(λ)和形状(μ)参数。在这里,在间接和半直接气溶胶运动(ISDAC)期间在北极卷云中获取的冰晶SD和在美国国家航空航天局(NASA)非洲季风多学科分析(NAMMA)期间在飓风中获取的冰晶SD使用多种算法来拟合伽马分布。结果表明,N-0,lambda和mu不是独立的参数,而是表现出相互依赖性。尽管N-0,lambda和mu高度不依赖于拟合例程的选择,但它们对拟合算法允许的容差敏感,这意味着需要在N-0λ-mu中使用三维空间,代表一个SD。根据所测SD的不确定性以及伽马分布与SD的匹配程度,在同等可实现的解决方案量中,参数可能会发生很大变化,尤其是N-0,跨几个数量级。描述了一种将SDs族表征为N-0λ-mu相空间中的椭球的方法,以及与N-0 lambda-mu相类似的散射,这些族与N-0 lambda中的散射相当和mu在不同条件下进行的先前野战中观察到。讨论了云参数化方案的发展以及微物理过程速率的相关计算的影响。

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