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首页> 外文期刊>Journal of the Atmospheric Sciences >Modeling the Interaction between Quasigeostrophic Vertical Motion and Convection in a Single Column
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Modeling the Interaction between Quasigeostrophic Vertical Motion and Convection in a Single Column

机译:模拟单列准地转垂直运动与对流之间的相互作用

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摘要

A single-column modeling approach is proposed to study the interaction between convection and large-scale dynamics using the quasigeostrophic (QG) framework. This approach extends the notion of "parameterization of large-scale dynamics," previously applied in the tropics via the weak temperature gradient approximation and other comparable methods, to the extratropics, where balanced adiabatic dynamics plays a larger role in inducing large-scale vertical motion. The diabatic heating in an air column is resolved numerically by a single-column model or a cloud-resolving model. The large-scale vertical velocity, which controls vertical advection of temperature and moisture, is computed through the QG omega equation including the dry adiabatic terms and the diabatic heating term. The component due to diabatic heating can be thought of as geostrophic adjustment to that heating and couples the convection to the large-scale vertical motion. The approach is demonstrated using two representations of convection: a single-column model and linear response functions derived by Z. Kuang from a large set of cloud-resolving simulations. The results are qualitatively similar in both cases. The behavior of convection that is strongly coupled to large-scale dynamics is significantly different from that in the uncoupled case. The positive feedback of the diabatic heating on the large-scale vertical motion reduces the stability of the system, extends the decay time scale after initial perturbations, and increases the amplitude of convective responses to transient large-scale perturbations or imposed forcings. The diabatic feedback of convection on vertical motion is strongest for horizontal wavelengths on the order of the Rossby deformation radius.
机译:提出了一种单列建模方法,以使用准地转(QG)框架研究对流与大规模动力学之间的相互作用。这种方法将先前通过弱温度梯度近似和其他可比较方法应用于热带地区的“大规模动力学的参数化”概念扩展到了温带热带,那里平衡的绝热动力学在引起大规模垂直运动方面起着更大的作用。 。气柱中的非绝热加热通过单列模型或云解析模型进行数值解析。通过QG omega方程(包括干绝热项和非绝热加热项)来计算控制温度和湿度的垂直对流的大规模垂直速度。绝热加热的成分可以被认为是对该加热的地转调节,并将对流耦合到大规模垂直运动。使用对流的两种表示方法演示了该方法:单列模型和Z. Kuang从大量的云解析模拟中得出的线性响应函数。在两种情况下,结果在质量上都相似。强耦合到大规模动力学的对流行为与非耦合情况下的对流行为有很大不同。绝热加热对大规模垂直运动的正反馈降低了系统的稳定性,延长了初始扰动后的衰减时间尺度,并增加了对瞬变大规模扰动或强加强迫的对流响应幅度。对流在垂直运动上的绝热反馈对于水平波长最强,大约为Rossby变形半径。

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