Modeling multiphase fluid flow, mass transfer, and chemical reactions in bioreactors using large-eddy simulation

IF 3.9 4区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Navraj Hanspal, Brian DeVincentis, John A. Thomas
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引用次数: 3

Abstract

We present a transient large eddy simulation (LES) modeling approach for simulating the interlinked physics describing free surface hydrodynamics, multiphase mixing, reaction kinetics, and mass transport in bioreactor systems. Presented case-studies include non-reacting and reacting bioreactor systems, modeled through the inclusion of uniform reaction rates and more complex biochemical reactions described using Contois type kinetics. It is shown that the presence of reactions can result in a non-uniform spatially varying species concentration field, the magnitude and extent of which is directly related to the reaction rates and the underlying variations in the local volumetric mass transfer coefficient.

Abstract Image

用大涡模拟模拟生物反应器中的多相流体流动、传质和化学反应
我们提出了一种瞬态大涡模拟(LES)建模方法,用于模拟生物反应器系统中描述自由表面流体动力学、多相混合、反应动力学和质量传递的相互联系的物理。介绍的案例研究包括非反应和反应的生物反应器系统,通过包含均匀反应速率和更复杂的生化反应来建模,使用Contois型动力学来描述。结果表明,反应的存在会导致非均匀的空间变化的物质浓度场,其大小和程度与反应速率和局部体积传质系数的变化直接相关。
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来源期刊
Engineering in Life Sciences
Engineering in Life Sciences 工程技术-生物工程与应用微生物
CiteScore
6.40
自引率
3.70%
发文量
81
审稿时长
3 months
期刊介绍: Engineering in Life Sciences (ELS) focuses on engineering principles and innovations in life sciences and biotechnology. Life sciences and biotechnology covered in ELS encompass the use of biomolecules (e.g. proteins/enzymes), cells (microbial, plant and mammalian origins) and biomaterials for biosynthesis, biotransformation, cell-based treatment and bio-based solutions in industrial and pharmaceutical biotechnologies as well as in biomedicine. ELS especially aims to promote interdisciplinary collaborations among biologists, biotechnologists and engineers for quantitative understanding and holistic engineering (design-built-test) of biological parts and processes in the different application areas.
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