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内置柔顺结构的新型 PZT 泵。

A Novel PZT Pump with Built-in Compliant Structures.

机构信息

College of Mechanical and Electrical Engineering, Guangzhou University, Guangzhou 510006, China.

National Research Center of Pumps, Jiangsu University, Zhenjiang 212013, China.

出版信息

Sensors (Basel). 2019 Mar 15;19(6):1301. doi: 10.3390/s19061301.

Abstract

Different to the traditionally defined valved piezoelectric (PZT) pump and valveless PZT pump, two groups of PZT pumps with built-in compliant structures-with distances between the free ends of 0.2 mm (Group A) and 0 mm (Group B)-were designed, fabricated, and experimentally tested. This type of pump mainly contains a chamber 12 mm in diameter and 1.1 mm in height, a PZT vibrator, and two pairs of compliant structures arranged on the flowing channel. The flow-resistance differences between these two groups of PZT pumps were theoretically and experimentally verified. The relationships between the amplitude, applied voltage and frequency of the PZT vibrators were obtained experimentally, with results illustrating that the amplitude linearly and positively correlates with the voltage, while nonlinearly and negatively correlating to the frequency. The flow rate performance of these two groups was experimentally tested from 110⁻160 Vpp and 10⁻130 Hz. Results showed that the flow rate positively correlates to the voltage, and the optimum flow rate frequency centers around 90 Hz for Group A and 80 Hz for Group B, respectively. The flow rate performances of Group B were further measured from 60⁻100 Hz and 170⁻210 Vpp, and obtained optimal flow rates of 3.6 mL/min at 210 Vpp and 80 Hz when ignoring the siphon-caused backward flow rate. As the compliant structures are not prominently limited by the channel's size, and the pump can be minimized by Micro-electromechanical Systems (MEMS) processing methods, it is a suitable candidate for microfluidic applications like closed-loop cooling systems and drug delivery systems.

摘要

与传统定义的阀控压电(PZT)泵和无阀 PZT 泵不同,设计、制造并实验测试了两组具有内置柔顺结构的 PZT 泵-自由端之间的距离分别为 0.2 毫米(A 组)和 0 毫米(B 组)。这种泵主要包含一个直径为 12 毫米、高度为 1.1 毫米的腔室、一个 PZT 振子和两对布置在流动通道上的柔顺结构。从理论和实验上验证了这两组 PZT 泵的流量阻力差异。通过实验获得了 PZT 振子的振幅、施加电压和频率之间的关系,结果表明振幅与电压呈线性正相关,而与频率呈非线性负相关。从 110⁻160 Vpp 和 10⁻130 Hz 实验测试了这两组的流量性能。结果表明,流量与电压呈正相关,A 组的最佳流量频率中心约为 90 Hz,B 组的最佳流量频率中心约为 80 Hz。进一步从 60⁻100 Hz 和 170⁻210 Vpp 测量了 B 组的流量性能,并在忽略虹吸引起的回流速率时,在 210 Vpp 和 80 Hz 时获得了 3.6 mL/min 的最佳流量。由于柔顺结构不受通道尺寸的明显限制,并且泵可以通过微机电系统(MEMS)加工方法最小化,因此它是微流控应用(如闭环冷却系统和药物输送系统)的合适候选者。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/43b3/6471629/9c56e6b2953b/sensors-19-01301-g001.jpg

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