João Lameu da Silva Jr., Harrson Silva Santana, Maximilian Joachim Hodapp
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引用次数: 0
Abstract
Microreactor Technology (MRT) represents a significant leap forward in chemical process intensification (PI), offering distinct advantages over conventional macroscale methods. The utilization of microfluidic reactors for PI has transformed various industries by enabling efficient handling of reactions and precise control of operating conditions, by advantages encompassing the reduced consumption of samples, reactants and catalysts, enhancement of heat and mass transfer rates, inherent from the high surface area to volume ratio. Despite the advances in the field, challenges remain, particularly concerning the manufacturing costs associated with scale-up and numbering-up, especially in catalytic processes. Effectively transitioning from microscale to industrial-scale production demands careful Research and Development (R&D) and innovative strategies to preserve the enhanced mixing and reaction capabilities inherent to microscale technologies. The scale-up of catalytic processes using microfluidic-based devices introduces distinct challenges, including managing heat transfer and ensuring optimal flow distribution. This review addressed promising developments in critical strategies to overcoming these challenges, such as the optimization of reactor block and flow distributors that can be initially performed by Computational Fluid Dynamics (CFD). Moreover, achieving effective thermal management in microreactor systems necessitates a balance between heat removal from reactors and minimizing heat dissipation into the surroundings. Innovative techniques such as 3D printing for customizable designs, coupled with numerical simulations to refine geometries, play fundamental roles in overcoming these challenges. MRT alongside innovation in the catalyst field holds great potential in the application of microfluidic-based devices in PI of catalytic processes and can contribute significantly for more sustainable processes.
微反应器技术(MRT)是化学过程强化(PI)领域的一次重大飞跃,与传统的宏观方法相比具有明显的优势。利用微流体反应器进行 PI 已改变了各行各业,它可以高效处理反应和精确控制操作条件,其优势包括减少样品、反应物和催化剂的消耗,提高传热和传质速率,这些都是高表面积与体积比所固有的。尽管在该领域取得了进步,但挑战依然存在,特别是与放大和编号相关的制造成本,尤其是在催化过程中。要有效地从微米级生产过渡到工业级生产,就必须进行精心的研究与开发(R&D),并采取创新战略,以保持微米级技术固有的增强混合和反应能力。使用基于微流控装置的催化过程放大带来了独特的挑战,包括管理热传递和确保最佳流量分布。本综述探讨了克服这些挑战的关键策略的发展前景,如反应器区块和流动分布器的优化,最初可通过计算流体动力学(CFD)来实现。此外,要在微反应器系统中实现有效的热管理,必须在反应器排热和尽量减少向周围散热之间取得平衡。用于定制设计的 3D 打印等创新技术,以及用于完善几何形状的数值模拟,在克服这些挑战方面发挥着根本性的作用。MRT 与催化剂领域的创新一起,在催化过程的 PI 中应用基于微流体的设备方面具有巨大潜力,并能为更可持续的过程做出重大贡献。
期刊介绍:
Journal of Industrial and Engineering Chemistry is published monthly in English by the Korean Society of Industrial and Engineering Chemistry. JIEC brings together multidisciplinary interests in one journal and is to disseminate information on all aspects of research and development in industrial and engineering chemistry. Contributions in the form of research articles, short communications, notes and reviews are considered for publication. The editors welcome original contributions that have not been and are not to be published elsewhere. Instruction to authors and a manuscript submissions form are printed at the end of each issue. Bulk reprints of individual articles can be ordered. This publication is partially supported by Korea Research Foundation and the Korean Federation of Science and Technology Societies.