Cheng X X, Turton R
Department of Chemical Engineering, West Virginia University, Morgantown 26506-6101, USA.
Pharm Dev Technol. 2000;5(3):311-22. doi: 10.1081/pdt-100100546.
The purpose of this work was to investigate the effect that changes in design and process variables had on the movement of particles around a fluidized bed coating apparatus. To measure the mean and variance of the particle cycle time distribution (CTD), the number of passages taken by a magnetic tracer particle through the spray zone was measured by a detector coil wound around the partition. The reproducibility of the measurement technique was tested by taking repeated measurements of the tracer particle movement, using similar bed operating conditions, and the method was found to give reproducible results. A series of experiments was carried out by varying operating conditions such as the partition gap, fluidizing air rate, and partition diameter and length, and measuring the change in the rate at which the tracer particle circulated in the coating device. The results of the experiments showed that, over the range of parameters tested in this work, the partition gap had the strongest influence on the rate of particle circulation. Moreover, for the 6-in.-diameter Wurster process used in the current work, the mean circulation time for the 1.1-mm-diameter Nu-Pareil particles was found to vary over the range of 2.2-10.4 sec. In addition, the mean and standard deviation of the CTD could be linearly correlated over a wide range of operating conditions, with a correlation coefficient of 0.80. Finally, an estimate of the variability in mass coating uniformity was made based on the results from the cycle time distributions. It was concluded that the effect of variability in the CTD could account for only a small fraction of the variability in the observed mass coating distribution.
这项工作的目的是研究设计和工艺变量的变化对流化床包衣设备周围颗粒运动的影响。为了测量颗粒循环时间分布(CTD)的均值和方差,通过缠绕在隔板上的检测线圈测量磁性示踪颗粒穿过喷雾区的次数。通过在相似的床层操作条件下对示踪颗粒运动进行重复测量,测试了测量技术的可重复性,结果发现该方法能给出可重复的结果。通过改变诸如隔板间隙、流化空气速率、隔板直径和长度等操作条件,并测量示踪颗粒在包衣装置中循环速率的变化,进行了一系列实验。实验结果表明,在本工作测试的参数范围内,隔板间隙对颗粒循环速率的影响最大。此外,对于本工作中使用的6英寸直径的Wurster工艺,发现1.1毫米直径的Nu-Pareil颗粒的平均循环时间在2.2 - 10.4秒范围内变化。另外,在很宽的操作条件范围内,CTD的均值和标准差可以线性相关,相关系数为0.80。最后,根据循环时间分布的结果对质量包衣均匀性的变化进行了估计。得出的结论是,CTD变化的影响仅占观察到的质量包衣分布变化的一小部分。