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FABRICATION AND APPLICATION OF A CHEMICAL RESISTANT LOW-COST MICRODROP GENERATOR

机译:耐化学腐蚀低成本微滴发生器的制备与应用

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This paper introduces a chemical resistant piezoelectrically driven microdrop generator which can be fabricated in a cost and time saving manner by using rapid prototyping techniques. Thus it is especially suitable as an experimentation platform. For the adaption of microdrop generators to various fluids, an experimentation platform is needed which allows the rapid change of geometry, dimensions, and material parameters of the microdrop generator. The size of the nozzle, the geometry of the pumping chamber, and the thickness of the used piezo-transducer have to be adaptable to various fluids to achieve drops of the size, speed, and uniformity that are needed. This microdrop generator uses a sandwich structure which consists of a silicon wafer, a Pyrex diaphragm, and a PZT transducer. A pumping chamber is milled into the silicon by laser micromachining; and the Pyrex is anodically bonded on top of the silicon plate to seal off the pumping chamber. The piezo-transducer is then glued to the diaphragm with an epoxy adhesive to obtain a bimorph actuator. When electrically driven, the actuator bends inwards into the pumping chamber which in turn creates a pressure wave inside the chamber that finally leads to the ejection of a drop out of the lateral nozzle. Since only the Pyrex and the silicon are in contact with the fluid the assembly is very resistant to aggressive media like solvents, adhesives, or acids. The thickness of the piezo-actuator can be varied according to the intended application. Depending on the piezoceramic used, the operating temperature is up to 250 °C. Single- and multi-nozzle arrays as well as the integration of a heated fluid reservoir can be realized. The drop volume is set by proper dimensioning of the microdrop generator. Manufacturing, assembly, and interconnection technology of the droplet generator will be described later in this paper. The electro-mechanical behaviour of the droplet generator is analyzed by determining the step response function and by measuring the frequency-dependant impedance. For the first fluidic validation of the experimentation platform, isopropanol is used because of its well known properties. The relationship between drop velocity and drive voltage on the PZT transducer is established. Special attention is paid to the calculation of the microdrop generator material cost which only amounts to $ 25 for a multi-nozzle array. By using rapid prototyping techniques the microdrop generator is manufactured within 180 min. This shows the potential for a low-cost and rapidly producible experimentation platform.
机译:本文介绍了一种耐化学腐蚀的压电驱动微滴发生器,该发生器可以使用快速原型技术以节省成本和时间的方式制造。因此,它特别适合作为实验平台。为了使微滴发生器适应各种流体,需要一个实验平台,该平台允许快速改变微滴发生器的几何形状,尺寸和材料参数。喷嘴的尺寸,泵送室的几何形状以及所使用的压电换能器的厚度必须适应各种流体,以实现所需的尺寸,速度和均匀性的降低。该微滴发生器使用三明治结构,该三明治结构由硅晶片,派热克斯膜片和PZT换能器组成。通过激光微加工将泵浦腔磨入硅中;派热克斯(Pyrex)阳极结合在硅板上,以密封泵室。然后用环氧树脂粘合剂将压电换能器胶合到隔膜上,以获得双压电晶片致动器。当电动驱动时,致动器向内弯曲进入泵腔,泵腔内又在腔体内产生压力波,最终导致液滴从侧向喷嘴中喷出。由于只有Pyrex和硅与流体接触,因此该组件对腐蚀性介质(如溶剂,粘合剂或酸)具有很高的抵抗力。压电致动器的厚度可以根据预期应用而变化。根据所使用的压电陶瓷,工作温度最高为250°C。可以实现单喷嘴和多喷嘴阵列以及加热储液器的集成。通过微滴发生器的适当尺寸设置液滴体积。液滴发生器的制造,组装和互连技术将在本文后面介绍。通过确定阶跃响应函数并通过测量频率相关的阻抗来分析液滴生成器的机电行为。对于实验平台的第一次流体验证,由于其众所周知的特性,因此使用了异丙醇。建立下降速度与PZT传感器上的驱动电压之间的关系。特别注意微滴发生器材料成本的计算,对于多喷嘴阵列,其成本仅为25美元。通过使用快速成型技术,可在180分钟内制造微滴发生器。这表明了低成本,快速生产的实验平台的潜力。

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