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Hirt, Mirjam; Rasp, Stephan; Blahak, Ulrich und Craig, George C. (2019): Stochastic Parameterization of Processes Leading to Convective Initiation in Kilometer-Scale Models. In: Monthly Weather Review, Bd. 147, Nr. 11: S. 3917-3934

Volltext auf 'Open Access LMU' nicht verfügbar.

Abstract

Kilometer-scale models allow for an explicit simulation of deep convective overturning but many subgrid processes that are crucial for convective initiation are still poorly represented. This leads to biases such as insufficient convection triggering and late peak of summertime convection. A physically based stochastic perturbation scheme (PSP) for subgrid processes has been proposed (Kober and Craig) that targets the coupling between subgrid turbulence and resolved convection. The first part of this study presents four modifications to this PSP scheme for subgrid turbulence: an autoregressive, continuously evolving random field;a limitation of the perturbations to the boundary layer that removes artificial convection at night;a mask that turns off perturbations in precipitating columns to retain coherent structures;and nondivergent wind perturbations that drastically increase the effectiveness of the vertical velocity perturbations. In a revised version, PSP2, the combined modifications retain the physically based coupling to the boundary layer scheme of the original scheme while removing undesirable side effects. This has the potential to improve predictions of convective initiation in kilometer-scale models while minimizing other biases. The second part of the study focuses on perturbations to account for convective initiation by subgrid orography. Here the mechanical lifting effect is modeled by introducing vertical and horizontal wind perturbations of an orographically induced gravity wave. The resulting perturbations lead to enhanced convective initiation over mountainous terrain. However, the total benefit of this scheme is unclear and we do not adopt the scheme in our revised configuration.

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