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Numerical simulations of mixing conditions and aerosol dynamics in the CERN CLOUD chamber

机译:CERN云室中混合条件和气溶胶动力学的数值模拟

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To study the effect of galactic cosmic rays on aerosols and clouds, the Cosmics Leaving OUtdoor Droplets (CLOUD) project was established. Experiments are carried out at a 26.1 m3 tank at CERN (Switzerland). In the experiments, the effect of ionizing radiation on H2SO4 particle formation and growth is investigated. To evaluate the experimental configuration, the experiment was simulated using a coupled multidimensional computational fluid dynamics (CFD) -particle model. In the model the coupled fields of gas/vapor species, temperature, flow velocity and particle properties were computed to investigate mixing state and mixing times of the CLOUD tank's contents. Simulation results show that a 1-fan configuration, as used in first experiments, may not be sufficient to ensure a homogeneously mixed chamber. To mix the tank properly, two fans and sufficiently high fan speeds are necessary. The 1/e response times for instantaneous changes of wall temperature and saturation ratio were found to be in the order of few minutes. Particle nucleation and growth was also simulated and particle number size distribution properties of the freshly nucleated particles (particle number, mean size, standard deviation of the assumed log-normal distribution) were found to be distributed over the tank's volume similar to the gas species.
机译:为了研究银河系宇宙射线对气溶胶和云的影响,建立了“宇宙离开室外液滴”(CLOUD)项目。实验是在CERN(瑞士)的26.1立方米水箱中进行的。在实验中,研究了电离辐射对H2SO4颗粒形成和生长的影响。为了评估实验配置,使用耦合多维计算流体动力学(CFD)粒子模型对实验进行了仿真。在该模型中,计算了气体/蒸汽种类,温度,流速和颗粒性质的耦合场,以研究CLOUD储罐内容物的混合状态和混合时间。仿真结果表明,在第一个实验中使用的1风扇配置可能不足以确保均匀混合的腔室。为了正确混合水箱,需要两个风扇和足够高的风扇速度。发现壁温度和饱和比的瞬时变化的1 / e响应时间为几分钟量级。还模拟了颗粒成核和生长,发现新成核颗粒的颗粒尺寸分布特性(颗粒数量,平均尺寸,假定对数正态分布的标准偏差)分布在罐的体积上,类似于气体种类。

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