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一种用于多堆叠微流控系统的具有均匀流量控制的 3D 打印流量分配器。

A 3D-printed flow distributor with uniform flow rate control for multi-stacked microfluidic systems.

机构信息

Center of Intelligent Microprocess for Pharmaceutical Synthesis, Department of Chemical Engineering, Pohang University of Science and Technology, Environ. Eng. Bldg., San 31, Hyoja-dong, Nam-gu, Pohang, South Korea.

Department of Mechanical Engineering, Pohang University of Science and Technology, Mechanical Eng. Bldg., San 31, Hyoja-dong, Nam-gu, Pohang, South Korea.

出版信息

Lab Chip. 2018 Apr 17;18(8):1250-1258. doi: 10.1039/C8LC00004B.

Abstract

In the scale-up of chemical production in a microfluidic system, it is challenging to prevent flow maldistribution from a single inlet into stacked multiple microchannel exits. In the present study, a compact flow distributor equipped with a fluidic damper is developed by computational fluid dynamics (CFD) along with experimental validation. A microfluidic flow distributor, which is equipped with an optimized fluidic damper and consists of 25 exit channels, is fabricated as an integrated body using a digital light processing (DLP) type 3D printer. The 3D printed flow distributor with a CFD-optimized fluidic damper is found to achieve a low maldistribution factor (MF) of 2.2% for the average flow rate over 25 exit channels while inducing only a minor increment (<6%) in the pressure drop. A generalized manual is proposed for the design of optimal flow distributors with different scale-up dimensions. Using the manual, an optimal flow distributor with 625 stacked microchannels with a MF of only 1.2% is successfully designed. It is expected that the design manual and the rapid printing platform will allow the efficient development of multi-channel stacked micro-devices such as those in drug delivery and energy conversion systems where equidistribution of fluid flow is highly demanded.

摘要

在微流控系统中进行化学生产的放大过程中,从单个入口进入堆叠的多个微通道出口时,防止流量分配不均是一项挑战。在本研究中,通过计算流体动力学(CFD)结合实验验证,开发了一种配备流体阻尼器的紧凑型流量分配器。配备优化的流体阻尼器的微流体流量分配器由 25 个出口通道组成,使用数字光处理(DLP)型 3D 打印机作为集成体制造。具有 CFD 优化的流体阻尼器的 3D 打印流量分配器实现了 25 个出口通道的平均流速下低分配不均系数(MF)为 2.2%,而压降仅增加了微小的增量(<6%)。提出了一种通用手册,用于设计具有不同放大尺寸的最佳流量分配器。使用该手册,成功设计了一个具有 625 个堆叠微通道的最佳流量分配器,其 MF 仅为 1.2%。预计设计手册和快速打印平台将允许高效开发多通道堆叠微器件,例如在药物输送和能量转换系统中,对流体流动的等分布有很高的要求。

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