基于阀门的新型微型压电液体泵

Runyu Liu, Guojun Liu, Meng Wang, Xinbo Li, Xiaodong Sun, Xiaopeng Liu, Conghui Wang
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摘要

压电泵因其体积小、噪音低、无电磁干扰等特点而在微流体技术中发挥着至关重要的作用,因此其用途非常广泛。随着技术的发展,微流控领域对压电泵的微型化、流量和压力提出了更高的要求。本文介绍了两种结构不同的新型微型阀式压电液体泵:单端口阀式压电微型泵(MPVPM)和双端口阀式压电微型泵(BPVPM)。两者的主要区别在于出口处悬臂梁阀的数量,前者为一组,后者为两组。首先,采用仿真软件对入口/出口阀门、周围流场、微通道和整个运行过程进行分析。其次,通过实验优化压电泵的关键结构参数。最后,制作了两种压电泵的原型,并对其输出性能指标进行了测试和比较。根据模拟和实验结果,与 MPVPM 相比,BPVPM 的腔体流体排出速度更快。BPVPM 中的弧形通道具有更高的能量传递效率。据观察,压电泵的流量和压力最初都随驱动频率的增加而增加,随后减少,而它们则随电压的增加而线性增加。在最佳工作条件下,MPVPM 的流速为 4.4 mL/min,压力为 21 kPa,而 BPVPM 的流速为 5.1 mL/min,压力为 25.7 kPa。这表明 BPVPM 的输出性能优于 MPVPM。此外,这两种压电泵的尺寸相同,均为 7 毫米 x 7 毫米 x 1.5 毫米,因此结构紧凑,效率高。这种压电泵体积小、综合输出性能好,在生物医学、冷却系统、燃料供应和化学工程等领域具有潜在的实用价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Novel miniature valve-based piezoelectric liquid pump

Piezoelectric pumps play a crucial role in microfluidics owing to their compact size, minimal noise, and absence of electromagnetic interference, rendering them exceptionally versatile. As technology advances, the field of microfluidics requires higher standards for miniaturization, flow rate, and pressure of piezoelectric pumps. This paper introduces two novel miniature valve-based piezoelectric liquid pump with distinct structures: the Mono-port valved piezoelectric micropump (MPVPM) and the Bi-port valved piezoelectric micropump (BPVPM). The primary distinguishing factor between the two is the number of cantilever beam valves at the outlet, with the former featuring one set and the latter featuring two sets. Firstly, simulation software is employed to analyze the inlet/outlet valves, the surrounding flow field, microchannels, and the overall operation process. Secondly, the key structural parameters of the piezoelectric pump are optimized through experiments. Finally, prototypes of both piezoelectric pumps are fabricated, and their output performance indicators are tested and compared. According to simulation and experimental results, the BPVPM demonstrates a faster discharge rate of fluid from the chamber compared to the MPVPM. The arc-shaped channel in the BPVPM exhibits superior energy transfer efficiency. It has been observed that both the flow rate and pressure of the piezoelectric pump initially increase with driving frequency, followed by a decrease, while they increase linearly with voltage. Under optimal operating conditions, the MPVPM achieves a flow rate of 4.4 mL/min and a pressure of 21 kPa, whereas the BPVPM achieves 5.1 mL/min and 25.7 kPa. This suggests that BPVPM has a superior output performance compared to MPVPM. Additionally, both proposed piezoelectric pumps have the same dimensions of 7 mm x 7 mm x 1.5 mm, making them compact and efficient. This piezoelectric pump exhibits good comprehensive output performance in a small size and holds potential practical value in fields such as biomedical, cooling systems, fuel supply, and chemical engineering.

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