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Development of a dual-phase miniature valve-less piezoelectric pump

机译:开发双相微型阀的压电泵

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This study investigated experimentally the working principle of a valve-less micro-pump with an open chamber actuated by a circular piezoelectric unimorph. In this pump, the electrode of the piezoelectric buzzer is segmented into two semi-circular portions driven by single-phase or dual-phase AC signals with a phase difference. The first symmetric mode, W00, and the first anti-symmetric mode, W01, are excited to pump fluid inside the chamber. For the experiments, the resonant frequencies and corresponding vibration modes of the buzzer were calculated by using the finite element code ANSYS, while the time-harmonic displacements of the unimorph induced by dual-phase signals were simulated and measured using the superposition method. The experimental setup for measuring the flow rate of this open-chamber micro-pump driven by a buzzer was the same as that previously described by Hasegawa et al (2005). The experimental results indicated that the resonant frequencies decreased due to the fluid loading effect and because the gap between the leading tube and the buzzer was reduced. The maximum flow rate pumped by the W00 mode was 133.13 ml/min, while the maximum flow rate pumped by the W01 mode was 9.63 ml/min. These maximum flow rates occur when the driving frequency is slightly lower than the corresponding resonant frequency.
机译:本研究研究了通过圆形压电单身循环致动的开口室的瓣膜微泵的实验工作原理。在该泵中,压电蜂鸣器的电极被分割成由单相或双相AC信号驱动的两个半圆形部分,其具有相位差。第一对称模式,W00和第一反对称模式W01被激发到腔室内的泵流体。对于实验,通过使用有限元码ANSYS计算蜂鸣器的谐振频率和相应的振动模式,而通过叠加方法模拟并测量由双相信号引起的单身形式的时间谐波位移。用于测量由蜂鸣器驱动的该开放式微泵的流量的实验装置与Hasegawa等(2005)所描述的相同。实验结果表明,谐振频率由于流体负载效应而降低,并且由于前管和蜂鸣器之间的间隙减小。由W00模式泵送的最大流速为133.13ml / min,而由W01模式泵送的最大流速为9.63ml / min。当驱动频率略低于相应的谐振频率时,发生这些最大流速。

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