Vision 2050: Reaction Engineering Roadmap

IF 4.3 Q2 ENGINEERING, CHEMICAL
Praveen Bollini, Moiz Diwan, Pankaj Gautam, Ryan L. Hartman, Daniel A. Hickman*, Martin Johnson, Motoaki Kawase, Matthew Neurock, Gregory S. Patience, Alan Stottlemyer, Dionisios G. Vlachos and Benjamin Wilhite, 
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Abstract

This perspective provides the collective opinions of a dozen chemical reaction engineers from academia and industry. In this sequel to the “Vision 2020: Reaction Engineering Roadmap,” published in 2001, we provide our opinions about the field of reaction engineering by addressing the current situation, identifying barriers to progress, and recommending research directions in the context of four industry sectors (basic chemicals, specialty chemicals, pharmaceuticals, and polymers) and five technology areas (reactor system selection, design and scale-up, chemical mechanism development and property estimation, catalysis, nonstandard reactor types, and electrochemical systems). Our collective input in this report includes numerous recommendations regarding research needs in the field of reaction engineering in the coming decades, including guidance for prioritizing efforts in workforce development, measurement science, and computational methods. We see important roles for reaction engineers in the plastics circularity challenge, decarbonization of processes, electrification of chemical reactors, conversion of batch processes to continuous processes, and development of intensified, dynamic reaction processes.

Abstract Image

Abstract Image

愿景 2050:反应工程路线图
本视角提供了来自学术界和工业界的十几位化学反应工程师的集体意见。这是 2001 年出版的《2020 年展望:反应工程路线图》的续篇:反应工程路线图 "中,我们针对反应工程领域的现状提出了自己的看法,指出了前进的障碍,并结合四个工业领域(基础化学品、特种化学品、制药和聚合物)和五个技术领域(反应器系统选择、设计和放大、化学机制开发和性质评估、催化、非标准反应器类型和电化学系统)推荐了研究方向。我们在本报告中提出的集体意见包括许多有关未来几十年反应工程领域研究需求的建议,其中包括在劳动力发展、测量科学和计算方法方面优先考虑的指导意见。我们认为,反应工程师在塑料循环性挑战、过程脱碳、化学反应器电气化、间歇过程向连续过程的转换以及强化动态反应过程的开发等方面发挥着重要作用。
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来源期刊
ACS Engineering Au
ACS Engineering Au 化学工程技术-
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期刊介绍: )ACS Engineering Au is an open access journal that reports significant advances in chemical engineering applied chemistry and energy covering fundamentals processes and products. The journal's broad scope includes experimental theoretical mathematical computational chemical and physical research from academic and industrial settings. Short letters comprehensive articles reviews and perspectives are welcome on topics that include:Fundamental research in such areas as thermodynamics transport phenomena (flow mixing mass & heat transfer) chemical reaction kinetics and engineering catalysis separations interfacial phenomena and materialsProcess design development and intensification (e.g. process technologies for chemicals and materials synthesis and design methods process intensification multiphase reactors scale-up systems analysis process control data correlation schemes modeling machine learning Artificial Intelligence)Product research and development involving chemical and engineering aspects (e.g. catalysts plastics elastomers fibers adhesives coatings paper membranes lubricants ceramics aerosols fluidic devices intensified process equipment)Energy and fuels (e.g. pre-treatment processing and utilization of renewable energy resources; processing and utilization of fuels; properties and structure or molecular composition of both raw fuels and refined products; fuel cells hydrogen batteries; photochemical fuel and energy production; decarbonization; electrification; microwave; cavitation)Measurement techniques computational models and data on thermo-physical thermodynamic and transport properties of materials and phase equilibrium behaviorNew methods models and tools (e.g. real-time data analytics multi-scale models physics informed machine learning models machine learning enhanced physics-based models soft sensors high-performance computing)
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