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Hybrid modeling of cross-flow filtration: Predicting the flux evolution and duration of ultrafiltration processes

机译:交叉流过滤的混合建模:预测超滤过程的助熔剂进化和持续时间

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摘要

Cross-flow ultrafiltration is a powerful tool used in bioprocesses to concentrate and separate biopharmaceuticals. However, there is a major challenge for its effective use: the fouling rate and decrease in the permeate flux vary substantially depending on the concentration and characteristics of the incoming feed, which causes variations in the process durations. We developed a hybrid model for use in predicting the flux evolution and duration of cross-flow ultrafiltration processes for various proteins, membrane types, input parameters, and filtration modes. The trained hybrid model is able to determine the process duration with an average normalized root-mean-square error of less than 6.2. It has superior adaptation to varying filtration characteristics compared to the mechanistic film theory model and can handle both batch- and fed-batch ultrafiltration using the same training set. In addition, the presented hybrid model can be used as a digital twin to simulate virtual processes with varying input parameters and different batch modes, which is a valuable tool for efficient process development or optimization.
机译:交叉流量超滤是一种用于生物处理的强大工具,以集中精力和分开的生物制药。然而,它的有效用途存在重大挑战:渗透率和渗透磁通量的降低显着取决于进料的浓度和特性,这导致过程持续的变化。我们开发了一种混合模型,用于预测各种蛋白质,膜类型,输入参数和过滤模式的通量进化和横流超滤过程的持续时间。培训的混合模型能够确定流程持续时间,平均归一化的根均线误差小于6.2。与机械薄膜理论模型相比,它具有卓越的改变与不同的过滤特性,并且可以使用相同的训练集处理批量和送餐批量超滤。此外,所提出的混合模型可以用作数字双胞胎,以模拟具有不同输入参数和不同批量模式的虚拟过程,这是有效的过程开发或优化的有价值的工具。

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