Formenti Luca Riccardo, Nørregaard Anders, Bolic Andrijana, Hernandez Daniela Quintanilla, Hagemann Timo, Heins Anna-Lena, Larsson Hilde, Mears Lisa, Mauricio-Iglesias Miguel, Krühne Ulrich, Gernaey Krist V
Department of Chemical and Biochemical Engineering, Technical University of Denmark (DTU), Lyngby, Denmark.
Biotechnol J. 2014 Jun;9(6):727-38. doi: 10.1002/biot.201300236. Epub 2014 May 20.
Industrial fermentation processes are increasingly popular, and are considered an important technological asset for reducing our dependence on chemicals and products produced from fossil fuels. However, despite their increasing popularity, fermentation processes have not yet reached the same maturity as traditional chemical processes, particularly when it comes to using engineering tools such as mathematical models and optimization techniques. This perspective starts with a brief overview of these engineering tools. However, the main focus is on a description of some of the most important engineering challenges: scaling up and scaling down fermentation processes, the influence of morphology on broth rheology and mass transfer, and establishing novel sensors to measure and control insightful process parameters. The greatest emphasis is on the challenges posed by filamentous fungi, because of their wide applications as cell factories and therefore their relevance in a White Biotechnology context. Computational fluid dynamics (CFD) is introduced as a promising tool that can be used to support the scaling up and scaling down of bioreactors, and for studying mixing and the potential occurrence of gradients in a tank.
工业发酵过程越来越受欢迎,并且被视为减少我们对化石燃料生产的化学品和产品依赖的一项重要技术资产。然而,尽管发酵过程越来越受欢迎,但它们尚未达到与传统化学过程相同的成熟度,特别是在使用数学模型和优化技术等工程工具方面。本观点首先简要概述这些工程工具。然而,主要重点是描述一些最重要的工程挑战:放大和缩小发酵过程、形态对发酵液流变学和传质的影响,以及建立新型传感器来测量和控制有洞察力的过程参数。最大的重点是丝状真菌带来的挑战,因为它们作为细胞工厂有广泛应用,因此在白色生物技术背景下具有相关性。计算流体动力学(CFD)作为一种有前途的工具被引入,可用于支持生物反应器的放大和缩小,以及研究罐内的混合和梯度的潜在出现情况。