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Quantifying the importance of galactic cosmic rays in cloud microphysical processes

机译:量化银河系宇宙射线在云微物理过程中的重要性

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Galactic Cosmic Rays are one of the major sources of ion production in the troposphere and stratosphere. Recent studies have shown that ions form electrically charged clusters which may grow to become cloud droplets. Aerosol particles charge by the attachment of ions and electrons. The collision efficiency between a particle and a water droplet increases, if the particle is electrically charged, and thus aerosol-cloud interactions can be enhanced. Because these microphysical processes may change radiative properties of cloud and impact Earth's climate it is important to evaluate these processes' quantitative effects. Five different models developed independently have been coupled to investigate this. The first model estimates cloud height from dew point temperature and the temperature profile. The second model simulates the cloud droplet growth from aerosol particles using the cloud parcel concept. In the third model, the scavenging rate of the aerosol particles is calculated using the collision efficiency between charged particles and droplets. The fourth model calculates electric field and charge distribution on water droplets and aerosols within cloud. The fifth model simulates the global electric circuit (GEC), which computes the conductivity and ionic concentration in the atmosphere in altitude range 0-45. km. The first four models are initially coupled to calculate the height of cloud, boundary condition of cloud, followed by growth of droplets, charge distribution calculation on aerosols and cloud droplets and finally scavenging. These models are incorporated with the GEC model. The simulations are verified with experimental data of charged aerosol for various altitudes. Our calculations showed an effect of aerosol charging on the CCN concentration within the cloud, due to charging of aerosols increase the scavenging of particles in the size range 0.1μm to 1μm.
机译:银河系宇宙射线是对流层和平流层中离子产生的主要来源之一。最近的研究表明,离子形成带电簇,并可能增长为云滴。气溶胶颗粒通过离子和电子的附着而带电。如果粒子带电,则粒子与水滴之间的碰撞效率增加,因此可以增强气溶胶-云相互作用。由于这些微物理过程可能会改变云的辐射特性并影响地球的气候,因此评估这些过程的定量影响非常重要。已经对五个独立开发的不同模型进行了研究。第一个模型根据露点温度和温度曲线估算云的高度。第二个模型使用云包裹概念模拟了来自气溶胶颗粒的云滴生长。在第三个模型中,使用带电粒子与液滴之间的碰撞效率来计算气溶胶粒子的清除率。第四个模型计算云中水滴和气溶胶上的电场和电荷分布。第五个模型模拟全局电路(GEC),该全局电路计算海拔高度0-45范围内大气中的电导率和离子浓度。公里首先将前四个模型耦合起来,以计算云的高度,云的边界条件,然后计算液滴的生长,计算气溶胶和云滴的电荷分布,最后进行清除。这些模型与GEC模型结合在一起。通过不同高度的带电气溶胶的实验数据验证了该模拟。我们的计算表明,气溶胶带电对云中CCN浓度有影响,这是因为气溶胶带电会增加对0.1μm到1μm范围内的粒子的清除。

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