A perspective on the past, the present, and the future of computational fluid dynamics (CFD) in flow chemistry

被引:0
作者
Natan Padoin
Tatiana Matiazzo
Humberto Gracher Riella
Cíntia Soares
机构
[1] Federal University of Santa Catarina,Laboratory of Materials and Scientific Computing (LabMAC), Department of Chemical and Food Engineering
来源
Journal of Flow Chemistry | 2024年 / 14卷
关键词
Computational fluid dynamics; CFD; Flow chemistry; Perspective;
D O I
暂无
中图分类号
学科分类号
摘要
Flow chemistry is the future of chemical processing. It represents a significant advance in energy consumption and waste generation regarding operations in batch and continuous flow macroscopic equipment since the transport rate (of mass, heat, photons, electrons, etc.) is tremendously intensified. In parallel, computational fluid dynamics (CFD) is part of engineering’s future. Digitalization of transport processes (involving fluid flow and scalar transport, e.g., species, energy, etc.) is the state-of-the-art for designing, optimizing, and scaling chemical reactors, separation and purification units, heat exchangers, etc. This perspective initially presents relevant fundamental CFD concepts applicable to any field. In the sequence, an overview of applications of CFD in flow chemistry reported in the literature over the last two decades is presented, highlighting the evolution of complexity and variety of topics investigated (ranging from single-phase flow optimization to multiphysics cases involving coupling of multiphase flow and external forces—e.g., ultrasound and electric field). Next, the contributions of our research group in CFD in flow chemistry are presented—with a focus on photocatalytic and electrocatalytic systems—and accompanied by highlights about our personal experience. Further discussion about strengths, limitations, and opportunities for CFD in flow chemistry is presented, highlighting to the reader the gaps that should be in the spotlight over the next few years, followed by our final remarks. After reading this perspective, the reader (either a starter in this field or an expert) will be able to identify how CFD has evolved in flow chemistry over the years and what are the next directions from the authors’ point of view.
引用
收藏
页码:239 / 256
页数:17
相关论文
共 557 条
[1]  
Matiazzo T(2022)Radiation field modeling of the NETmix milli-photocatalytic reactor: Effect of LEDs position over the reactor window Chem Eng J 429 131670-304
[2]  
Ramaswamy K(2022)CFD and radiation field modeling of the NETmix milli-photocatalytic reactor for n-decane oxidation at gas phase: Effect of LEDs number and arrangement Chem Eng J 444 136577-449
[3]  
Vilar VJP(2020)Influence of acoustic waves on the solids dispersion in a gas-solid CFB riser: Numerical analysis Powder Technol 359 292-198
[4]  
Padoin N(2021)Influence of ultrasonic waves on the gas-solid flow and the solids dispersion in a CFB riser: Numerical and experimental study Powder Technol 389 430-552
[5]  
Soares C(2023)A CFD study on ultrasound-enhanced CFB riser with calcium oxide and activated coal for CO2 capture application Results in Engineering 20 101583-1861
[6]  
Matiazzo T(2022)On the performance of liquid-liquid Taylor flow electrochemistry in a microreactor – A CFD study Chem Eng J 427 131443-77
[7]  
Vilar VJP(2021)Gas bubbles have controversial effects on Taylor flow electrochemistry Chem Eng J 406 126811-759
[8]  
Riella HG(2015)CFD simulation of equilibrium shape and coalescence of ferrofluid droplets subjected to uniform magnetic field Colloids Surf A Physicochem Eng Asp 481 186-197
[9]  
Padoin N(2018)CFD modeling and sensitivity analysis of heat transfer enhancement of a ferrofluid flow in the presence of a magnetic field Int J Heat Mass Transf 127 544-5036
[10]  
Soares C(2004)Multi-scale modeling of dispersed gas–liquid two-phase flow Chem Eng Sci 59 1853-661