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首页> 外文期刊>Atmospheric Chemistry and Physics Discussions >The invigoration of deep convective clouds over the Atlantic: aerosol effect, meteorology or retrieval artifact?
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The invigoration of deep convective clouds over the Atlantic: aerosol effect, meteorology or retrieval artifact?

机译:在大西洋上深入对流云的敏感性:气溶胶效应,气象学或检索神器?

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Associations between cloud properties and aerosol loading are frequently observed in products derived from satellite measurements. These observed trends between clouds and aerosol optical depth suggest aerosol modification of cloud dynamics, yet there are uncertainties involved in satellite retrievals that have the potential to lead to incorrect conclusions. Two of the most challenging problems are addressed here: the potential for retrieved aerosol optical depth to be cloud-contaminated, and as a result, artificially correlated with cloud parameters; and the potential for correlations between aerosol and cloud parameters to be erroneously considered to be causal. Here these issues are tackled directly by studying the effects of the aerosol on convective clouds in the tropical Atlantic Ocean using satellite remote sensing, a chemical transport model, and a reanalysis of meteorological fields. Results show that there is a robust positive correlation between cloud fraction or cloud top height and the aerosol optical depth, regardless of whether a stringent filtering of aerosol measurements in the vicinity of clouds is applied, or not. These same positive correlations emerge when replacing the observed aerosol field with that derived from a chemical transport model. Model-reanalysis data is used to address the causality question by providing meteorological context for the satellite observations. A correlation exercise between the full suite of meteorological fields derived from model reanalysis and satellite-derived cloud fields shows that observed cloud top height and cloud fraction correlate best with model pressure updraft velocity and relative humidity. Observed aerosol optical depth does correlate with meteorological parameters but usually different parameters from those that correlate with observed cloud fields. The result is a near-orthogonal influence of aerosol and meteorological fields on cloud top height and cloud fraction. The results strengthen the case that the aerosol does play a role in invigorating convective clouds.
机译:在衍生自卫星测量的产品中经常观察到云属性和气溶胶载荷之间的关联。这些观察到的云和气溶胶光学深度之间的趋势表明了云动力学的气溶胶改性,但卫星检索有可能导致不正确结论的卫星检索的不确定性。这里解决了两个最具挑战性问题:检索气雾光学深度的可能性是云污染,结果与云参数人为相关;并且,气溶胶和云参数之间的相关性可能被错误地被认为是因果的。在这里,这些问题直接通过研究气溶胶对热带大西洋的对流云使用卫星遥感,化学传输模型和气象领域的重新分析来解决对流云的影响。结果表明,无论是否施加云附近的气溶胶测量,云分数或云顶部高度和气溶胶光学深度之间存在稳健的正相关性。当用衍生自化学传输模型时,替换观察到的气溶胶场时出现了相同的正相关性。模型 - 再分析数据用于通过为卫星观察提供气象背景来解决因果关系问题。来自模型再分析和卫星衍生的云场的全部气象场之间的相关运动表明,观察到的云顶部高度和云分数最佳地与模型压力上升速度和相对湿度相关。观察到的气溶胶光学深度与气象参数相关,但通常与观察到的云领域相关的那些相同的参数。结果是气溶胶和气象场在云顶部高度和云分数上的近乎正交影响。结果加强了气溶胶在激活对流云中发挥作用的情况。

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