Objective Characterization of Rain Microphysics: Validating a Scheme Suitable for Weather and Climate Models

Author:

Tapiador F. J.1,Berne A.2,Raupach T.2,Navarro A.1,Lee G.3,Haddad Z. S.4

Affiliation:

1. Department of Environmental Sciences, Institute of Environmental Sciences, Earth and Space Sciences Research Group, University of Castilla–La Mancha, Toledo, Spain

2. Environmental Remote Sensing Laboratory, École Polytechnique Fédérale de Lausanne, Lausanne, Switzerland

3. Department of Astronomy and Atmospheric Sciences, Kyungpook National University, Daegu, South Korea

4. Jet Propulsion Laboratory, California Institute of Technology, Pasadena, California

Abstract

Abstract Improving the atmospheric component of hydrological models is beneficial for applications such as water resources assessment and hydropower operations. Within this goal, precise characterization of rain microphysics is key for climate and weather modeling, and thus for hydrometeorological applications. Such characterization can be achieved by analyzing the evolution in time of the particle size distribution (PSD) of hydrometeors, which can be measured at ground using disdrometers for validation. The estimation, however, depends on the choice of the PSD form (the shape) and on the parameters to define the exact shape. In the case of modeling rain microphysics, two approaches compete: the use of the number concentration of drops decoupled from the shape of the distribution (the [NT, E(D), E(D2)] and the {NT, E(D), E[log(D)]} models), and the (N0, Λ, μ) model that embeds in N0 both the shape of the distribution and the number concentration of drops. Here we use a comprehensive dataset of disdrometer measurements to show that the NT-based approaches allow a more precise characterization of the drop size distribution (DSD) and also a physically based modeling of the microphysical processes of rain since NT is analytically independent of the shape of the DSD {parameterized by E(D), and E(D2) or E[log(D)]}. The implication is that numerical models would benefit from decoupling the number of drops from the shape of distribution in their modules of precipitation microphysics in order to improve outputs that eventually feed hydrological models.

Funder

Ministerio de Economía y Competitividad

Ministerio de Ciencia e Innovación

CYTEMA

Publisher

American Meteorological Society

Subject

Atmospheric Science

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