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Dynamic modeling of the secondary drying stage of freeze drying reveals distinct desorption kinetics for bound water

机译:冷冻干燥二次干燥阶段的动态建模揭示了结束水的不同解吸动力学

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摘要

In freeze-drying, the desorption step for reaching a low target moisture content may take a significant fraction of the total process duration. Since the long term stability of freeze-dried biological products strongly depends on the current moisture content, modelling the desorption process may help safely optimise the secondary drying step. Most published models assume a first-order desorption kinetic, but experimental evidence shows that strongly bound water in the monolayer takes a much longer time to be desorbed than less bound water in multilayer. The proposed model for desorption of freeze-dried lactic acid bacteria preparation accounts for monolayer and multilayer water state in the solid matrix, with very different desorption kinetics. Results showed that the ratio of characteristic desorption times (monolayer/multilayer) was almost 30. Temperature dependence was adequately described by an Arrhenius law in the range of 15 to 40°C. Model parameter identification used simultaneously gravimetric measurements with high time resolution and direct Karl-Fisher titration, from several experiments at different, time-varying temperatures.
机译:在冷冻干燥中,用于达到低靶水分含量的解吸步骤可能需要总处理持续时间的大部分。由于冷冻干燥生物制品的长期稳定性强烈取决于目前的水分含量,因此对解吸过程进行建模可以有助于安全地优化二次干燥步骤。大多数公布的模型假设一阶解吸动力学,但实验证据表明,单层中的强烈的水需要更长时间的时间去吸收而不是多层的少数水。用于解吸冻干乳酸菌制剂的拟议模型在固体基质中的单层和多层水状态下,具有非常不同的解吸动力学。结果表明,特征解吸次数(单层/多层)的比例几乎是30次。阿尔尼斯法在15至40℃的范围内充分描述了温度依赖性。模型参数识别使用具有高时间分辨率和直接karl-fisher滴定的同时重量测量,从不同,时变温度的几个实验。

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