Hu Chuntian
CONTINUUS Pharmaceuticals, Woburn, MA 01801 USA.
J Flow Chem. 2021;11(3):243-263. doi: 10.1007/s41981-021-00164-3. Epub 2021 May 18.
Pharmaceutical production remains one of the last industries that predominantly uses batch processes, which are inefficient and can cause drug shortages due to the long lead times or quality defects. Consequently, pharmaceutical companies are transitioning away from outdated batch lines, in large part motivated by the many advantages of continuous manufacturing (e.g., low cost, quality assurance, shortened lead time). As chemical reactions are fundamental to any drug production process, the selection of reactor and its design are critical to enhanced performance such as improved selectivity and yield. In this article, relevant theories, and models, as well as their required input data are summarized to assist the reader in these tasks, focusing on continuous reactions. Selected examples that describe the application of plug flow reactors (PFRs) and continuous-stirred tank reactors (CSTRs)-in-series within the pharmaceutical industry are provided. Process analytical technologies (PATs), which are important tools that provide real-time in-line continuous monitoring of reactions, are recommended to be considered during the reactor design process (e.g., port design for the PAT probe). Finally, other important points, such as density change caused by thermal expansion or solid precipitation, clogging/fouling, and scaling-up, are discussed.
制药生产仍然是主要采用间歇工艺的少数行业之一,这种工艺效率低下,并且由于前置时间长或质量缺陷可能导致药品短缺。因此,制药公司正在逐步淘汰过时的间歇生产线,这在很大程度上是受连续制造的诸多优势(例如低成本、质量保证、缩短前置时间)的推动。由于化学反应是任何药物生产过程的基础,反应器的选择及其设计对于提高性能(如提高选择性和产率)至关重要。在本文中,总结了相关理论、模型及其所需的输入数据,以帮助读者完成这些任务,重点是连续反应。提供了一些选定的示例,描述了活塞流反应器(PFR)和串联连续搅拌槽反应器(CSTR)在制药行业中的应用。过程分析技术(PAT)是对反应进行实时在线连续监测的重要工具,建议在反应器设计过程中予以考虑(例如为PAT探头设计端口)。最后,讨论了其他要点,如热膨胀或固体沉淀引起的密度变化、堵塞/结垢以及放大问题。