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The impact of hail size on simulated supercell storms

机译:冰雹大小对模拟超级单体风暴的影响

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摘要

Variations in storm microstructure due to updraft strength, liquid water content, and the presence of dry layers, wind shear, and cloud nucleating aerosol concentrations are likely to lead to changes in hail sizes within deep convective storms. The focus of this paper is to determine how the overall dynamics and microphysical structure of deep convective storms are affected if hail sizes are somehow altered in a storm environment that is otherwise the same. The sensitivity of simulated supercell storms to hail size distributions is investigated by systematically varying the mean hail diameter from 3 mm to 1 cm using the Regional Atmospheric Modeling System ( RAMS) model. Increasing the mean hail diameter results in a hail size distribution in which the number concentration of smaller hailstones is decreased, while that of the larger hailstones is increased. This shift in the hail size distribution as a result of increasing the mean hail diameter leads to an increase in the mean terminal fall speed of the hail species and to reduced melting and evaporation rates. The sensitivity simulations demonstrate that the low-level downdrafts are stronger, the cold pools are deeper and more intense, the left-moving updraft is shorter-lived, the right-moving storm is stronger but not as steady, and the low-level vertical vorticity is greater in the cases with smaller hail stones. The maximum hail mixing ratios are greater in the larger hail simulations, but they are located higher in the storm and farther away from the updraft core in the smaller hail runs. Changes in the hail size distribution also appear to influence the type of supercell that develops.
机译:由于上升气流强度,液态水含量以及干层,风切变和云形核气溶胶浓度的存在,风暴微观结构的变化很可能导致深对流风暴中冰雹大小的变化。本文的重点是确定如果在相同的暴风雨环境中以某种方式改变冰雹的大小,深对流暴风雨的整体动力学和微物理结构将如何受到影响。通过使用区域大气建模系统(RAMS)模型系统地将平均冰雹直径从3 mm更改为1 cm,研究了模拟的超级单体风暴对冰雹尺寸分布的敏感性。增加平均冰雹直径会导致冰雹尺寸分布,其中较小冰雹的数量浓度减少,而较大冰雹的数量浓度增加。由于平均冰雹直径的增加,冰雹尺寸分布的这种变化导致冰雹物种的平均终末下落速度增加,并导致融化和蒸发速率降低。敏感性模拟表明,低层向下气流更强,冷池更深,更剧烈,向左移动的向上气流的寿命较短,向右移动的风暴更强但不那么稳定,并且低层垂直冰雹较小的情况下,涡度较大。在较大的冰雹模拟中,最大的冰雹混合比更大,但在较小的冰雹运行中,它们在风暴中的位置较高,而距上浮岩芯较远。冰雹尺寸分布的变化也似乎会影响所形成的超级电池的类型。

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