操纵流体与振动3d打印桨在微泵的应用

IF 2.7
Zhiyong Tang, Xiufeng Shao, Jianze Huang, Jinyuan Yao, Guifu Ding
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引用次数: 1

摘要

基于3D打印技术,提出了一种利用微桨主动操纵流体的新型微泵工作机理。运用分析、计算和实验等方法,系统地论述了新型的工作原理。建立理论模型,研究MPs形状、尺寸、振动幅值和频率等影响驱动能力的关键参数和工作机理。介绍了两种不同的3D打印技术,将多步骤过程简化为一个步骤来制造原型泵,并对其原理进行了实验研究。设计了一个测试系统,用于评估8种不同振动桨的泵的流量。在9 V的施加电压下,获得了127.9 mL/min的最大通量。实验表明,主动式机械泵不仅可以自由控制流向,而且可以通过采用不同的形状或分配方式改变流量。新型微泵的优点是将MP结构应用于微泵系统中,在较低的功率下具有灵活性和高驱动能力的主动操纵流体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Manipulating fluid with vibrating 3D-printed paddles for applications in micropump

This paper presents a novel working mechanism of a micropump using micropaddles (MPs) to actively manipulate fluid based on 3D printing technology. The novel working principle is systematically discussed using analysis, computation and experiment methods. A theoretical model is established to research the working mechanism and crucial parameters for driving ability, such as MPs shape, size, vibration amplitude and frequency. Two different 3D printing techniques that simplify the multi-step process into only one step are introduced to manufacture the prototype pump for investigating the principle experimentally. A testing system is designed to evaluate the flow rate of pumps with eight different vibrating paddles. A maximum flux of 127.9 mL/min is obtained at an applied voltage of 9 V. These experiments show that the active-type mechanical pump could not only freely control flow direction but also change flux by adopting different shapes or distribution ways. The advantage of the novel micropump is the application of the MP structure into the micropump system to actively manipulate fluid with flexibility and high driving ability at fairly low power.

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