Munas Fathima Rehana, Melroy Gehan, Abeynayake Chamitha Bhagya, Chathuranga Hiniduma Liyanage, Amarasinghe Ranjith, Kumarage Pubudu, Dau Van Thanh, Dao Dzung Viet
Faculty of Engineering, University of Moratuwa, Moratuwa 10400, Sri Lanka.
Research Group (Environmental Health), Sumitomo Chemical, Hyogo 665-8555, Japan.
Sensors (Basel). 2018 Apr 24;18(5):1302. doi: 10.3390/s18051302.
A piezoelectrically actuated valveless micropump has been designed and developed. The principle components of this system are piezoelectrically actuated (PZT) metal diaphragms and a complete fluid flow system. The design of this pump mainly focuses on a cross junction, which is generated by a nozzle jet attached to a pump chamber and the intersection of two inlet channels and an outlet channel respectively. During each PZT diaphragm vibration cycle, the junction connecting the inlet and outlet channels with the nozzle jet permits consistencies in fluidic momentum and resistances in order to facilitate complete fluidic path throughout the system, in the absence of any physical valves. The entire micropump structure is fabricated as a plate-by-plate element of polymethyl methacrylate (PMMA) sheets and sandwiched to get required fluidic network as well as the overall device. In order to identify the flow characteristics, and to validate the test results with numerical simulation data, FEM analysis using ANSYS was carried out and an eigenfrequency analysis was performed to the PZT diaphragm using COMSOL Multiphysics. In addition, the control system of the pump was designed and developed to change the applied frequency to the piezoelectric diaphragms. The experimental data revealed that the maximum flow rate is 31.15 mL/min at a frequency of 100 Hz. Our proposed design is not only for a specific application but also useful in a wide range of biomedical applications.
一种压电驱动的无阀微泵已被设计并研发出来。该系统的主要组成部分是压电驱动(PZT)金属隔膜和一个完整的流体流动系统。这种泵的设计主要集中在一个十字形交叉点上,它由连接到泵腔的喷嘴射流以及分别两个入口通道和一个出口通道的交叉点产生。在每个PZT隔膜振动周期内,连接入口和出口通道与喷嘴射流的交叉点允许流体动量和阻力保持一致,以便在没有任何物理阀门的情况下,使整个系统的流体路径完整。整个微泵结构是由聚甲基丙烯酸甲酯(PMMA)片材逐板制作而成,并进行夹层处理以获得所需的流体网络以及整个装置。为了确定流动特性,并将测试结果与数值模拟数据进行验证,使用ANSYS进行了有限元分析,并使用COMSOL Multiphysics对PZT隔膜进行了固有频率分析。此外,还设计并开发了泵的控制系统,以改变施加到压电隔膜上的频率。实验数据表明,在100Hz频率下,最大流速为31.15mL/min。我们提出的设计不仅适用于特定应用,而且在广泛的生物医学应用中也很有用。