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A thermally actuated microelectromechanical (MEMS) device for measuring viscosity.

机译:一种用于测量粘度的热驱动微机电(MEMS)设备。

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摘要

A thermally actuated non-cantilever-beam micro-electro-mechanical viscosity sensor is presented. The proposed device is based on thermally induced vibrations of a silicon-based membrane and its damping due to the surrounding fluid. This vibration viscometer device utilizes thermal actuation through an in-situ resistive heater and piezoresistive sensing, both of which utilize CMOS compatible materials leading to an inexpensive and reliable system. Due to the nature of the actuation, thermal analysis was performed utilizing PN diodes embedded in the silicon membrane to monitor its temperature. This analysis determined the minimum heater voltage pulse amplitude and time in order to prevent heat loss to the oil under test that would lead to local viscosity changes. In order to study the natural vibration behavior of the complex multilayer membrane that is needed for the proposed sensor, a designed experiment was carried out. In this experiment, the effects of the material composition of the membrane and the size of the actuation heater were studied in detail with respect to their effects on the natural frequency of vibration. To confirm the validity of these measurements, Finite Element Analysis and white-light interferometry were utilized. Further characterization of the natural frequency of vibration of the membranes was carried out at elevated temperatures to explore the effects of temperature. Complex interactions take place among the different layers that compose the membrane structures. Finally, viscosity measurements were performed and compared to standard calibrated oils as well as to motor oils measured on a commercial cone-and-plate viscometer. The experimentally obtained data is compared to theoretical predictions and an empirically-derived model to predict viscosity from vibration measurements is proposed. Frequency correlation to viscosity was shown to be the best indicator for the range of viscosities tested with lower error (+/- 5%), than that of quality factor (+/- 20%). Further viscosity measurements were taken at elevated temperatures and over long periods of time to explore the device reliability and drift. Finally, further size reduction of the device was explored.
机译:提出了一种热驱动非悬臂梁微机电粘度传感器。所提出的装置基于硅基膜的热诱导振动及其由于周围流体引起的阻尼。这种振动粘度计装置利用通过原位电阻加热器的热致动和压阻感测,二者均利用兼容CMOS的材料制成了廉价而可靠的系统。由于驱动的性质,利用嵌入在硅膜中的PN二极管进行热分析以监测其温度。该分析确定了最小加热器电压脉冲幅度和时间,以防止热量流失到被测油中,从而导致局部粘度变化。为了研究所提出的传感器所需的复杂多层膜的自然振动行为,进行了设计实验。在该实验中,针对膜片的材料组成和致动加热器的尺寸对振动固有频率的影响进行了详细研究。为了确认这些测量的有效性,使用了有限元分析和白光干涉测量法。在高温下进一步表征了膜的固有振动频率,以探索温度的影响。组成膜结构的不同层之间发生复杂的相互作用。最后,进行粘度测量,并将其与标准校准油以及在商用锥板粘度计上测得的机油进行比较。将实验获得的数据与理论预测值进行比较,并提出了一种基于经验的模型,可通过振动测量预测粘度。与粘度的频率相关性被证明是测试粘度范围的最佳指标,其误差(+/- 5%)低于品质因数(+/- 20%)。在高温和长时间下进行了进一步的粘度测量,以探索器件的可靠性和漂移。最后,探索了进一步减小设备尺寸的方法。

著录项

  • 作者

    Puchades, Ivan.;

  • 作者单位

    Rochester Institute of Technology.;

  • 授予单位 Rochester Institute of Technology.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 204 p.
  • 总页数 204
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 公共建筑;
  • 关键词

  • 入库时间 2022-08-17 11:45:08

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