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一种基于层流的微流控特斯拉泵,通过光刻实现3D打印。

A Laminar Flow-Based Microfluidic Tesla Pump via Lithography Enabled 3D Printing.

作者信息

Habhab Mohammed-Baker, Ismail Tania, Lo Joe Fujiou

机构信息

Department of Mechanical Engineering, Bioengineering Program, University of Michigan at Dearborn, 2088 IAVS Building, 4901 Evergreen Rd., Dearborn, MI 48128, USA.

出版信息

Sensors (Basel). 2016 Nov 23;16(11):1970. doi: 10.3390/s16111970.

Abstract

Tesla turbine and its applications in power generation and fluid flow were demonstrated by Nicholas Tesla in 1913. However, its real-world implementations were limited by the difficulty to maintain laminar flow between rotor disks, transient efficiencies during rotor acceleration, and the lack of other applications that fully utilize the continuous flow outputs. All of the aforementioned limits of Tesla turbines can be addressed by scaling to the microfluidic flow regime. Demonstrated here is a microscale Tesla pump designed and fabricated using a Digital Light Processing (DLP) based 3D printer with 43 µm lateral and 30 µm thickness resolutions. The miniaturized pump is characterized by low Reynolds number of 1000 and a flow rate of up to 12.6 mL/min at 1200 rpm, unloaded. It is capable of driving a mixer network to generate microfluidic gradient. The continuous, laminar flow from Tesla turbines is well-suited to the needs of flow-sensitive microfluidics, where the integrated pump will enable numerous compact lab-on-a-chip applications.

摘要

1913年,尼古拉·特斯拉展示了特斯拉涡轮机及其在发电和流体流动方面的应用。然而,其在现实世界中的应用受到限制,包括转子盘之间难以维持层流、转子加速过程中的瞬态效率,以及缺乏充分利用连续流输出的其他应用。通过缩小到微流体流动状态,可以解决特斯拉涡轮机上述所有限制。这里展示的是一种微型特斯拉泵,它是使用基于数字光处理(DLP)的3D打印机设计和制造的,横向分辨率为43微米,厚度分辨率为30微米。这种小型泵的特点是雷诺数低至1000,在1200转/分钟空载情况下流速高达12.6毫升/分钟。它能够驱动混合器网络以产生微流体梯度。特斯拉涡轮机产生的连续层流非常适合对流动敏感的微流体需求,集成泵将使众多紧凑的芯片实验室应用成为可能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c052/5134628/52788374d482/sensors-16-01970-g001.jpg

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