首页> 外文会议>ASME Fluids Engineering Division Meeting >DESIGN OF A NOVEL BIDIRECTIONAL VALVELESS PIEZOELECTRIC MICROPUMP WITH THREE CHAMBERS USING COANDA EFFECT BASED ON NUMERICAL SIMULATION
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DESIGN OF A NOVEL BIDIRECTIONAL VALVELESS PIEZOELECTRIC MICROPUMP WITH THREE CHAMBERS USING COANDA EFFECT BASED ON NUMERICAL SIMULATION

机译:基于数值模拟的基于数值模拟的Coanda效应设计了一种新的双向阀门压电微泵

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A novel bidirectional valveless piezoelectric micropump with three chambers using the Coanda effect has been developed. The volume efficiency of the micropump is able to reach 50% which is much higher than that of the traditional diffuser/nozzle valveless micropump and its transport direction is easy to change. The chambers are covered by three piezoelectric actuators, respectively. There are three channels connected with each chamber, respectively. And the other ends of the channels join together and connect with a diffuser. One of the channels has the same centerline with the diffuser. The centerline is perpendicular to the other two channels which situate on the two sides of the diffuser symmetrically. Inlet and outlet channels are connected with the other end of the diffuser. Three piezoelectric actuators are driven by the synchronous voltages with different magnitude. When the fluid is discharged from the pump chambers, the flowrate of one channel situated on the side of the diffuser is smaller than that of the two others. Due to the Coanda effect, the jet flow in the diffuser attaches the wall and all fluid enters the outlet channel. And some fluid is sucked from inlet channel because of the vortex induced by the jet flow. When the fluid is sucked into the pump chambers, the flowrate of fluid sucked into the inlet and outlet channels are same. So the fluid transports from the inlet channel to outlet channel in a cycle. And the micropump could change the transport direction by changing the flowrate of the two channels situated on the two sides of the diffuser. CFX is applied to simulate the flow field of the micropump and the dynamic mesh method is used for the simulation of the piezoelectric actuator. The sinusoidal vibration is applied to the piezoelectric actuator and the frequency is 10Hz. The narrowest width and height of the diffuser is 200μm. The Reynolds number is between 1000 and 1800 in the simulation and the SST model is chosen. Hexahedral mesh is used and the number of elements is about 1.2 million. The result shows that when the amplitude of two actuators is same and the amplitude of the third one is 20% of the former (the maximum Reynolds number of the diffuser is about 1200), the maximum flowrate of the micropump is 2.43 ml/min and the volume efficiency reaches 58%.
机译:利用附壁效应三个腔室的新型双向无阀压电微型泵已经研制成功。微型泵的容积效率能达到50%,这比传统的扩散器/喷嘴无阀的微型泵和其输送方向的高得多的容易变化。各腔室由三个压电致动器分别覆盖。有三个通道分别与各个腔相连接,。和通道的另一端与一个扩散器一起和连接加入。其中一个通道具有与扩散器相同的中心线。的中心线垂直于另两个通道,其宅院在扩散对称的两侧。入口和出口通道与扩散器的另一端连接。三个压电致动器由具有不同大小的同步电压驱动。当流体从泵室排出,位于扩散器的侧面有一个信道的流速比其他两个小。由于附壁效应,在扩散器的喷流高度的壁和所有流体进入出口通道。和一些流体从因为由喷流引起的涡流的入口通道被吸入。当流体被吸入到泵室中,流体的流量被吸入到入口和出口通道相同。因此,从在循环入口通道到出口通道的流体传输。和微型泵可以通过改变位于扩散器的两侧的两个通道的流速改变输送方向。 CFX被施加到模拟微型泵的流场,用于压电致动器的仿真的动态网格法。正弦振动被施加到压电致动器和频率为10Hz。扩散器的最窄宽度和高度为200μm。雷诺数为1000和1800之间在模拟和选择了SST模型。六面体网格被使用和元件的数量为约120万。结果表明,当两个致动器的振幅是相同的,第三个的振幅为前者(扩散器的最大雷诺数为约1200),微型泵的最大流量2.43毫升/分钟和20%的容积效率达到58%。

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