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The non‐conservation of potential vorticity by a dynamical core compared with the effects of parametrized physical processes

机译:与参数化物理过程的影响相比,动态核心不守恒的势涡度

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摘要

Numerical models of the atmosphere combine a dynamical core, which approximates solutions to the adiabatic, frictionless governing equations for fluid dynamics, with tendencies arising from the parametrization of other physical processes. Since potential vorticity (PV) is conserved following fluid flow in adiabatic, frictionless circumstances, it is possible to isolate the effects of non-conservative processes by accumulating PV changes in an air-mass relative framework. This “PV tracer technique” is used to accumulate separately the effects on PV of each of the different non-conservative processes represented in a numerical model of the atmosphere. Dynamical cores are not exactly conservative because they introduce, explicitly or implicitly, some level of dissipation and adjustment of prognostic model variables which acts to modify PV. Here, the PV tracers technique is extended to diagnose the cumulative effect of the non-conservation of PV by a dynamical core and its characteristics relative to the PV modification by parametrized physical processes.ududQuantification using the Met Office Unified Model reveals that the magnitude of the non-conservation of PV by the dynamical core is comparable to those from physical processes. Moreover, the residual of the PV budget, when tracing the effects of the dynamical core and physical processes, is at least an order of magnitude smaller than the PV tracers associated with the most active physical processes. The implication of this work is that the non-conservation of PV by a dynamical core can be assessed in case studies with a full suite of physics parametrizations and directly compared with the PV modification by parametrized physical processes. The nonconservation of PV by the dynamical core is shown to move the position of the extratropical tropopause while the parametrized physical processes have a lesser effect at the tropopause level.
机译:大气层的数值模型结合了一个动力核心,该动力核心近似于绝热,无摩擦的流体动力学控制方程的解,并且具有其他物理过程的参数化趋势。由于在绝热,无摩擦的情况下流体流动后会保留潜在的涡度(PV),因此可以通过在空气质量相对框架中累积PV变化来隔离非保守过程的影响。该“ PV示踪技术”用于分别累积大气数值模型中表示的每个不同的非保守过程对PV的影响。动态核心并不是完全保守的,因为它们显式或隐式地引入了一定程度的耗散和对预测模型变量的调整,这些变量用于修改PV。在这里,PV示踪技术得到了扩展,可以诊断动态核对PV的不保守性的累积效应及其相对于通过参数化物理过程进行的PV改性的特性。 ud ud使用Met Office统一模型进行定量分析可以发现动态核心对PV的不守恒幅度与物理过程中的不守恒幅度相当。此外,当追踪动态核心和物理过程的影响时,PV预算的剩余部分至少比与最活跃的物理过程相关的PV跟踪器小一个数量级。这项工作的含义是,在具有全套物理参数设置的案例研究中,可以评估动态核心对PV的不守恒,并可以直接将其与参数化物理过程对PV的修改进行比较。动态核心对PV的不守恒显示出可以移动温带对流层顶的位置,而参数化物理过程在对流层顶水平上的影响较小。

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