UMR GMPA, AgroParisTech, INRA, Université Paris Saclay, 78 850, Thiverval-Grignon, France; GSK Vaccines, Rixensart, Belgium.
GSK Vaccines, Rixensart, Belgium.
J Pharm Sci. 2018 Aug;107(8):2098-2106. doi: 10.1016/j.xphs.2018.04.002. Epub 2018 Apr 14.
During the freeze-drying process, vials located at the border of the shelf usually present higher heat flow rates that result in higher product temperatures than vials in the center. This phenomenon, referred to as edge vial effect, can lead to product quality variability within the same batch of vials and between batches at different scales. Our objective was to investigate the effect of various freeze dryer design features on heat transfer variability. A 3D mathematical model previously developed in COMSOL Multiphysics and experimentally validated was used to simulate the heat transfer of a set of vials located at the edge and in the center of the shelf. The design features considered included the vials loading configurations, the thermal characteristics, and some relevant dimensions of the drying chamber geometry. The presence of the rail in the loading configuration and the value of the shelf emissivity strongly impacted the heat flow rates received by the vials. Conversely, the heat transfer was not significantly influenced by modifications of the thermal conductivity of the rail, the emissivity of the walls, or the geometry of the drying chamber. The model developed turned out to be a powerful tool for cycle development and scale-up.
在冷冻干燥过程中,搁板边缘处的小瓶通常具有较高的热流率,导致产品温度高于中心处的小瓶。这种现象称为边缘小瓶效应,可能导致同一批小瓶和不同规模批次之间的产品质量出现差异。我们的目标是研究各种冷冻干燥器设计特征对传热可变性的影响。使用先前在 COMSOL Multiphysics 中开发并经过实验验证的 3D 数学模型来模拟搁板边缘和中心位置的一组小瓶的传热情况。所考虑的设计特征包括小瓶装载配置、热特性以及干燥室几何形状的一些相关尺寸。装载配置中轨道的存在以及搁板发射率的值强烈影响小瓶接收的热流率。相反,轨道的热导率、壁的发射率或干燥室的几何形状的修改对传热的影响并不显著。所开发的模型被证明是开发和放大循环的有力工具。