Department of Chemical Engineering, Massachusetts Institute of Technology, 77 Massachusetts Avenue, 66-342, Cambridge, MA 02139, USA.
Lab Chip. 2016 Jul 19;16(15):2775-84. doi: 10.1039/c6lc00728g.
Continuous multiphase flow strategies are commonly employed for high-throughput parameter screening of physical, chemical, and biological processes as well as continuous preparation of a wide range of fine chemicals and micro/nano particles with processing times up to 10 min. The inter-dependency of mixing and residence times, and their direct correlation with reactor length have limited the adaptation of multiphase flow strategies for studies of processes with relatively long processing times (0.5-24 h). In this frontier article, we describe an oscillatory multiphase flow strategy to decouple mixing and residence times and enable investigation of longer timescale experiments than typically feasible with conventional continuous multiphase flow approaches. We review current oscillatory multiphase flow technologies, provide an overview of the advancements of this relatively new strategy in chemistry and biology, and close with a perspective on future opportunities.
连续多相流策略常用于高通量筛选物理、化学和生物过程的参数,以及连续制备广泛的精细化学品和微/纳米颗粒,处理时间可达 10 分钟。混合和停留时间的相互依存关系及其与反应器长度的直接相关性限制了多相流策略在处理时间相对较长(0.5-24 小时)的过程中的应用。在这篇前沿文章中,我们描述了一种振荡多相流策略,以解耦混合和停留时间,并能够研究比传统连续多相流方法通常更可行的更长时间尺度的实验。我们回顾了当前的振荡多相流技术,概述了这一相对较新策略在化学和生物学中的进展,并对未来的机遇进行了展望。