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Characterization of oscillator circuits for monitoring the density-viscosity of liquids by means of piezoelectric MEMS microresonators

机译:用于通过压电MEMS微谐振器监测液体密度-粘度的振荡电路的特性

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Real-time monitoring of the physical properties of liquids, such as lubricants, is a very important issue for the automotive industry. For example, contamination of lubricating oil by diesel soot has a significant impact on engine wear. Resonant microstructures are regarded as a precise and compact solution for tracking the viscosity and density of lubricant oils. In this work, we report a piezoelectric resonator, designed to resonate with the 4~(rd) order out-of-plane modal vibration, 15-mode, and the interface circuit and calibration process for the monitoring of oil dilution with diesel fuel. In order to determine the resonance parameters of interest, i.e. resonant frequency and quality factor, an interface circuit was implemented and included within a closed-loop scheme. Two types of oscillator circuits were tested, a Phase-Locked Loop based on instrumentation, and a more compact version based on discrete electronics, showing similar resolution. Another objective of this work is the assessment of a calibration method for piezoelectric MEMS resonators in simultaneous density and viscosity sensing. An advanced calibration model, based on a Taylor series of the hydrodynamic function, was established as a suitable method for determining the density and viscosity with the lowest calibration error. Our results demonstrate the performance of the resonator in different oil samples with viscosities up to 90 mPa·s. At the highest value, the quality factor measured at 25℃ was around 22. The best resolution obtained was 2.4·10~(-6) g/ml for the density and 2.7·10~(-3) mPa·s for the viscosity, in pure lubricant oil SAE 0W30 at 90℃. Furthermore, the estimated density and viscosity values with the MEMS resonator were compared to those obtained with a commercial density-viscosity meter, reaching a mean calibration error in the best scenario of around 0.08% for the density and 3.8% for the viscosity.
机译:液体(例如润滑剂)的物理特性的实时监控对于汽车工业来说是一个非常重要的问题。例如,柴油机烟灰对润滑油的污染对发动机的磨损有重大影响。共振微结构被认为是跟踪润滑油粘度和密度的精确而紧凑的解决方案。在这项工作中,我们报告了一种压电谐振器,该谐振器旨在与4〜(rd)阶面外模态振动,15模式以​​及接口电路和校准过程产生谐振,以监测柴油中的油稀释。为了确定感兴趣的谐振参数,即谐振频率和品质因数,实现了接口电路并将其包括在闭环方案中。测试了两种类型的振荡器电路,一种基于仪器的锁相环,另一种基于分立电子器件的紧凑型电路,具有相似的分辨率。这项工作的另一个目标是评估同时密度和粘度感测中压电MEMS谐振器的校准方法。建立了基于流体动力学函数的泰勒级数的高级校准模型,作为确定具有最低校准误差的密度和粘度的合适方法。我们的结果证明了谐振器在粘度高达90 mPa·s的不同油样中的性能。最高值在25℃下测得的品质因数约为22。获得的最佳分辨率为:密度为2.4·10〜(-6)g / ml,粘度为2.7·10〜(-3)mPa·s ,在90℃的纯润滑油SAE 0W30中。此外,将使用MEMS谐振器估算的密度和粘度值与使用商用密度-粘度计获得的密度和粘度值进行了比较,在最佳情况下,平均校准误差约为密度的0.08%和粘度的3.8%。

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