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Mass accommodation coefficient of water: A combined computational fluid dynamics and experimental data analysis

机译:水的质量容纳系数:计算流体动力学和实验数据分析的组合

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The mass accommodation coefficient α mass of water vapor in NaCl solutions has been studied for realistic lower atmospheric conditions. To determine α mass , a combination of experimental data and computational fluid dynamics (CFD) modeling has been applied. Experiments were performed at the Leipzig Aerosol Cloud Interaction Simulator (LACIS), a laminar flow diffusion tube for measurements of both hygroscopic growth and cloud condensation nuclei (CCN) activation. Quasi-monodisperse sodium chloride particles with 54 nm and 108 nm in diameter have been used as condensation nuclei. To characterize particle growth, mean droplet diameters have been measured at the outlet of LACIS with a white-light optical particle spectrometer. Measurements were performed for different saturation ratios in the range between 1.0 and 1.02. Experiments have been modeled using the Computational Fluid Dynamics Code (CFD-Code) FLUENT6 combined with the Fine Particle Model (FPM). For determination of α mass , measured droplet diameters have been compared with calculated ones. The accommodation coefficient in the theoretical calculations was varied to achieve a quantitative comparison with the measurements. Experimental data shown in this study are consistent with α mass > 0.30. Therefore our results support previous studies applying different experimental techniques.
机译:对于现实的较低大气条件,已经研究了NaCl溶液中水蒸气的质量调节系数αmass。为了确定α质量,已将实验数据和计算流体动力学(CFD)建模相结合。实验在莱比锡气溶胶云相互作用模拟器(LACIS)上进行,这是一种用于测量吸湿性生长和云凝结核(CCN)活化的层流扩散管。直径为54 nm和108 nm的准单分散氯化钠颗粒已用作缩合核。为了表征颗粒的生长,已使用白光光学颗粒光谱仪在LACIS的出口处测量了平均液滴直径。针对1.0至1.02之间的范围内的不同饱和率进行了测量。实验是使用计算流体力学代码(CFD-Code)FLUENT6与细颗粒模型(FPM)结合进行建模的。为了确定α质量,已将测得的液滴直径与计算得出的液滴直径进行了比较。改变理论计算中的调节系数以实现与测量的定量比较。本研究显示的实验数据与α质量> 0.30一致。因此,我们的结果支持采用不同实验技术的先前研究。

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