气体发酵:一种改变游戏规则的技术,从分子工程到生物反应器,建模和优化过程和设备

IF 0.7 4区 工程技术 Q4 ENGINEERING, CHEMICAL
I. G. Nizovtseva, D. V. Chernushkin, A. V. Rezaykin, V. E. Svitich, A. E. Korenskaia, P. V. Mikushin, I. O. Starodumov
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引用次数: 0

摘要

在全球对可持续能源、建筑材料和高质量食品的需求不断增加以支持不断增长的人口的背景下,对气体底物的生物转化的研究兴趣日益浓厚。这些底物是利用甲烷、一氧化碳和二氧化碳以及氢作为营养物质的独特微生物的碳和能量的关键来源。除了解决微生物生物物理学和生物化学中的数学建模挑战的基本科学兴趣外,该研究领域的特点是具有重要的实际意义。研究人员专注于几个任务类:应用基因工程优化代谢过程,以高效生产广泛的产品;关键生物催化酶的研究;以及生物反应器创新工程解决方案的开发。这些新型反应器设计旨在提高过程的可控性、安全性和效率,同时降低生产成本。为了评估现有和新兴生物反应器的相对效率,特别是在传质特性和能耗方面,现在有一系列广泛的工具可用。这些包括描述两相气液系统和流体动力学过程的数学方法,以及先进的计算技术,如超级计算、机器学习算法和神经网络。这项工作提出了几个例子,并概述了气体发酵发展的当代趋势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Gas Fermentation: A Game-Changing Technology from Molecular Engineering to Bioreactors, Modeling, and Optimizing Processes and Apparatuses

Gas Fermentation: A Game-Changing Technology from Molecular Engineering to Bioreactors, Modeling, and Optimizing Processes and Apparatuses

Against the backdrop of an increasing global demand for sustainable energy sources, construction materials, and high-quality food to support a growing population, there is heightened research interest in the biotransformation of gaseous substrates. These substrates serve as critical sources of carbon and energy for unique microorganisms that utilize methane, carbon monoxide and carbon dioxide, and hydrogen as nutrients. In addition to the fundamental scientific interest in addressing the mathematical modeling challenges in the biophysics and biochemistry of microorganisms, this research area is characterized by its significant practical implications. Researchers are focusing on several task classes: the application of genetic engineering to optimize metabolic processes for the efficient production of a broad spectrum of products; the study of key biocatalytic enzymes; and the development of innovative engineering solutions for bioreactors. These novel reactor designs aim to enhance process controllability, safety, and efficiency while reducing production costs. To assess the comparative efficiency of existing and emerging bioreactors—particularly regarding mass transfer characteristics and energy consumption—a wide array of tools is now available. These include mathematical methods for describing two-phase gas–liquid systems and hydrodynamic processes, as well as advanced computational techniques such as supercomputing, machine learning algorithms, and neural networks. This work presents several examples and outlines contemporary trends in the development of gas fermentation.

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来源期刊
CiteScore
1.20
自引率
25.00%
发文量
70
审稿时长
24 months
期刊介绍: Theoretical Foundations of Chemical Engineering is a comprehensive journal covering all aspects of theoretical and applied research in chemical engineering, including transport phenomena; surface phenomena; processes of mixture separation; theory and methods of chemical reactor design; combined processes and multifunctional reactors; hydromechanic, thermal, diffusion, and chemical processes and apparatus, membrane processes and reactors; biotechnology; dispersed systems; nanotechnologies; process intensification; information modeling and analysis; energy- and resource-saving processes; environmentally clean processes and technologies.
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