混合(物理)
微观混合
色散(光学)
过饱和度
湍流
成核
机械
消散
降水
化学
停留时间(流体动力学)
热力学
停留时间分布
度量(数据仓库)
流量(数学)
分析化学(期刊)
物理
色谱法
光学
气象学
岩土工程
工程类
计算机科学
量子力学
数据库
作者
C.P.M. Roelands,J.J. Derksen,Joop H. ter Horst,Herman J. M. Kramer,P.J. Jansens
标识
DOI:10.1002/ceat.200390045
摘要
Abstract Mixing in a typical experimental setup to measure nucleation rates in precipitation processes was assessed. To determine these rates as a function of the driving force for concomitant polymorphs, it is necessary to perform these experiments at constant supersaturation. Therefore, the mixing time must be shorter than the time for the first nuclei to appear. For fast precipitation processes complete mixing has to be achieved within milliseconds. The mixing performance of a wide angle Y‐mixer was studied to see whether this is possible. An analysis of characteristic mixing times as a function of the average energy dissipation rate showed that turbulent dispersion of the feed streams determined the rate of the mixing process. The characteristic time for turbulent dispersion was of the same order as an arbitrarily set residence time in the Y‐mixer. However, CFD simulations of the flow showed large variation in the spatial distribution of the dissipation rate and revealed unsatisfying macromixing.
科研通智能强力驱动
Strongly Powered by AbleSci AI