Müller Don Fabian, Wibbing Daniel, Kager Julian
Festo SE & Co. KG, Ruiter Str. 82, 73734, Esslingen am Neckar, Germany.
Department of Chemical and Biochemical Engineering, Technical University of Denmark, 2800, Kgs. Lyngby, Denmark.
Bioprocess Biosyst Eng. 2025 Feb;48(2):317-329. doi: 10.1007/s00449-024-03111-3. Epub 2024 Dec 13.
A first principle soft-sensor for biomass and substrate estimation in upstream bioprocessing based on the fusion of elemental balancing and nonlinear kinetics is presented. It aims to extend the validity range of well-established elemental balancing soft sensors to substrate saturated and overfeeding conditions that often occur in induced production phases. An experimental study with recombinant E. coli cultivations was conducted to illustrate the soft-sensor principle and to analyze the accuracy as well as generalizability of the approach. Under substrate limited growth the extended soft-sensor showed similar performance as classical elemental balancing. In induced production phases however, a decline in maximum substrate uptake capacity ( ) of up to 80% was observed, where the extended soft-sensor showed up to 41 % better estimates for the biomass and up to 75 % better estimates for the substrate in terms of NRMSE. The paper discusses the possible benefits as well as the requirements for the implementation of the extended elemental balancing soft-sensor.
本文提出了一种基于元素平衡和非线性动力学融合的用于上游生物过程中生物量和底物估计的第一原理软传感器。其目的是将成熟的元素平衡软传感器的有效范围扩展到诱导生产阶段经常出现的底物饱和和过量进料条件。进行了一项关于重组大肠杆菌培养的实验研究,以说明软传感器原理并分析该方法的准确性和通用性。在底物受限生长条件下,扩展软传感器表现出与经典元素平衡相似的性能。然而,在诱导生产阶段,观察到最大底物摄取能力( )下降高达80%,在此情况下,扩展软传感器在NRMSE方面对生物量的估计高达41%更优,对底物的估计高达75%更优。本文讨论了扩展元素平衡软传感器实施的可能益处以及要求。