Department of Bioengineering and California NanoSystems Institute, Henry Samueli School of Engineering and Applied Science, University of California, Los Angeles, CA 90095, USA.
Lab Chip. 2009 Nov 7;9(21):3038-46. doi: 10.1039/b912547g. Epub 2009 Sep 22.
Despite the common wisdom that inertia does not contribute to microfluidic phenomena, recent work has shown a variety of useful effects that depend on fluid inertia for applications in enhanced mixing, particle separation, and bioparticle focusing. Due to the robust, fault-tolerant physical effects employed and high rates of operation, inertial microfluidic systems are poised to have a critical impact on high-throughput separation applications in environmental cleanup and physiological fluids processing, as well as bioparticle focusing applications in clinical diagnostics. In this review I will discuss the recent accelerated progress in developing prototype inertial microfluidic systems for a variety of applications and attempt to clarify the fundamental fluid dynamic effects that are being exploited. Finally, since this a nascent area of research, I will suggest some future promising directions exploiting fluid inertia on the microscale.
尽管普遍认为惯性对微流控现象没有贡献,但最近的工作表明,由于采用了强大、容错的物理效应和高操作速度,惯性微流控系统有望对环境清理和生理流体处理中的高通量分离应用以及临床诊断中的生物颗粒聚焦应用产生重大影响。在这篇综述中,我将讨论最近在为各种应用开发惯性微流控系统原型方面取得的快速进展,并试图阐明正在利用的基本流体动力学效应。最后,由于这是一个新兴的研究领域,我将提出一些未来有前途的利用微尺度流体惯性的方向。