Process Research and Development, Global Pharmaceutical Research and Development, Abbott Laboratories, North Chicago, Illinois 60064, USA.
J Pharm Sci. 2012 Oct;101(10):3886-95. doi: 10.1002/jps.23237. Epub 2012 Jun 29.
Drying an early stage active pharmaceutical ingredient candidate required excessively long cycle times in a pilot plant agitated filter dryer. The key to faster drying is to ensure sufficient heat transfer and minimize mass transfer limitations. Designing the right mixing protocol is of utmost importance to achieve efficient heat transfer. To this order, a composite model was developed for the removal of bound solvent that incorporates models for heat transfer and desolvation kinetics. The proposed heat transfer model differs from previously reported models in two respects: it accounts for the effects of a gas gap between the vessel wall and solids on the overall heat transfer coefficient, and headspace pressure on the mean free path length of the inert gas and thereby on the heat transfer between the vessel wall and the first layer of solids. A computational methodology was developed incorporating the effects of mixing and headspace pressure to simulate the drying profile using a modified model framework within the Dynochem software. A dryer operational protocol was designed based on the desolvation kinetics, thermal stability studies of wet and dry cake, and the understanding gained through model simulations, resulting in a multifold reduction in drying time.
在中试规模搅拌式过滤干燥器中干燥早期的活性药物成分候选物需要过长的周期时间。更快干燥的关键是确保充分的传热并最小化传质限制。设计正确的混合方案对于实现有效的传热至关重要。为此,开发了一种用于去除结合溶剂的组合模型,该模型结合了传热和去溶剂化动力学模型。所提出的传热模型与以前报道的模型在两个方面有所不同:它考虑了容器壁和固体之间的气隙对总传热系数的影响,以及惰性气体的自由程长度对容器壁和第一层固体之间的传热的影响。开发了一种计算方法,结合混合和腔室压力的影响,使用 Dynochem 软件中的修改后的模型框架模拟干燥曲线。根据去溶剂化动力学、湿饼和干饼的热稳定性研究以及通过模型模拟获得的理解,设计了一种干燥器操作方案,从而将干燥时间缩短了数倍。