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An electrostatic microvalve for pneumatic control of microfluidic systems.

机译:静电微阀,用于气动控制微流体系统。

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摘要

An electrostatic microvalve for the pneumatic control of microfluidic devices is designed, modeled, fabricated, and characterized. The valve consists of several, individually manufactured pieces assembled to form a microvalve. This creates an inexpensive microvalve that can be easily and quickly manufactured. The unique feature of this microvalve is its ability to be integrated with a microfluidic system for good portability. The valve was manufactured by depositing a thin chrome layer on a Poly(methyl methacrylate) substrate. Thin copper foil was used as a flexible membrane that would deflect to allow air flow. When a voltage was applied between the chrome layer and the copper foil, the electrostatic force pulled the foil closed against the substrate and stopped the air flow. Parylene C was selected as a dielectric layer to provide insulation and prevent short circuiting between the chrome and copper electrodes. The valve was designed using a flexible, proximal electrode concept that decreased the required closing voltage. A mathematical model was developed to predict the voltage required to close the valve. Tests were performed to determine the closing voltage and flowrate through the valve. The parylene dielectric thickness and the valve cavity depth were varied to find the best valve parameters. It was determined that a valve with a 6 mum layer of parylene with a 58 mum cavity depth provided the best combination of low closing voltage and high flowrate. These valves were tested to work at pressures up to 40 kPa with an average closing voltage of 680 V and an average flowrate of 1.05 mL/min. The valve showed that it also may be able to function as a flowrate control valve at higher pressures, i.e., greater than 40 kPa. It was found that dielectric charging was occurring in the valve during operation. Switching the polarity of the control voltage with each actuation was a proposed solution that was tested and found to delay the onset of dielectric charging. Finally, the valve was successfully used to pneumatically control flow in a simplified microfluidic device.
机译:设计,建模,制造和表征了用于微流控装置气动控制的静电微阀。该阀由几个单独制造的部件组成,这些部件组装成一个微型阀。这产生了可以容易且快速地制造的便宜的微型阀。该微型阀的独特之处在于它能够与微流体系统集成以实现良好的便携性。通过在聚甲基丙烯酸甲酯基板上沉积一层薄铬层来制造阀门。薄的铜箔用作挠性膜,该挠性膜会偏转以允许空气流动。当在铬层和铜箔之间施加电压时,静电力将箔拉紧在基材上,并停止了气流。选择聚对二甲苯C作为介电层,以提供绝缘并防止铬和铜电极之间的短路。该阀采用灵活的近端电极概念设计,可降低所需的关闭电压。开发了数学模型来预测关闭阀门所需的电压。进行测试以确定关闭电压和通过阀门的流量。改变聚对二甲苯的介电厚度和阀腔深度以找到最佳的阀参数。已确定具有6微米聚对二甲苯层且腔深为58毫米的阀门可提供低关闭电压和高流量的最佳组合。测试这些阀在最高40 kPa的压力下工作,平均关闭电压为680 V,平均流量为1.05 mL / min。该阀表明,它还可以在较高压力(即大于40 kPa)下用作流量控制阀。发现在操作期间在阀中发生介电充电。提议的解决方案是通过每次启动来切换控制电压的极性,该解决方案已通过测试,发现可以延迟介电充电的开始。最后,该阀已成功用于简化的微流控设备中的气动控制。

著录项

  • 作者

    Anjewierden, Douglas.;

  • 作者单位

    The University of Utah.;

  • 授予单位 The University of Utah.;
  • 学科 Engineering Mechanical.
  • 学位 M.S.
  • 年度 2011
  • 页码 60 p.
  • 总页数 60
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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