首页> 外文期刊>Journal of the Atmospheric Sciences >Microphysical structure of the marine boundary layer under strong wind and spray formation as seen from simulations using a 2d explicit microphysical model. part II: The role of sea sprayt
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Microphysical structure of the marine boundary layer under strong wind and spray formation as seen from simulations using a 2d explicit microphysical model. part II: The role of sea sprayt

机译:如使用二维显式微物理模型进行的模拟所见,在强风和喷雾作用下海洋边界层的微物理结构。第二部分:海浪的作用

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摘要

The effect of sea spray on the thermodynamics and microphysical structure of the lowest 400-m layer under strong wind speeds is investigated using a 2D hybrid Lagrangian-Eulerian model with spectral bin microphysics.A large number of adjacent and interacting Lagrangian parcels move within a turbulent-like flow with the largest vortices being interpreted as large eddies (LE)with characteristic velocity of a fewmeters per second. It is shown that sea spray effect strongly depends on the environmental conditions, and largely on relative humidity (RH). When RH,; 90%, spray evaporates and contributes to moistening and cooling of the boundary layer, as well as to an increase in surface fluxes. When RH.;90% the effects of spray on the BL thermodynamics substantially decrease. Spray leads to formation of drizzle by collisions with droplets formed on background aerosols. It is also shown that LE transport about 20% of large spray drops with radius exceeding 150 mmto the upper levels of the atmospheric mixed layer. It is hypothesized that this effect is of much importance with regard to the spray effect on the microphysicsand dynamics of deep convective clouds typical of a hurricane eyewall.
机译:使用带有光谱箱微物理的二维混合拉格朗日-欧拉模型,研究了强风速下海浪对最低400米层热力学和微物理结构的影响,大量相邻且相互作用的拉格朗日包裹在湍流中移动最大涡旋的类流被解释为大涡(LE),其特征速度为每秒几米。结果表明,海浪影响在很大程度上取决于环境条件,并且在很大程度上取决于相对湿度(RH)。当RH时; 90%的喷雾会蒸发并有助于边界层的润湿和冷却,并有助于增加表面通量。当相对湿度为90%时,喷雾对BL热力学的影响会大大降低。喷雾会导致与背景气溶胶上形成的液滴碰撞而形成毛毛雨。还表明,LE将半径超过150毫米的大雾滴的约20%输送到大气混合层的上层。据推测,这种影响对于飓风眼墙典型的深层对流云的微观物理学和动力学方面的喷雾效应非常重要。

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