Non-Destructive Evaluation Device for Monitoring Fluid Viscosity

被引:5
作者
Abdulkareem, Ahmed [1 ]
Erturun, Ugur [2 ]
Mossi, Karla [1 ]
机构
[1] Virginia Commonwealth Univ, Dept Mech & Nucl Engn, Richmond, VA 23284 USA
[2] Johns Hopkins Univ, Dept Elect & Comp Engn, Baltimore, MD 21218 USA
关键词
viscosity; piezoelectricity; wave propagation; non-destructive evaluation; MEMS; RESONATOR; IMPEDANCE; DENSITY; SENSORS; OIL;
D O I
10.3390/s20061657
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
There is an increasing need for non-destructive, low-cost devices for real-time fluid viscosity monitoring. Therefore, in this study, a method based on structural health monitoring is adapted for monitoring fluid properties. A device is built such that an inexpensive and disposable viscosity probe be possible. The design incorporates a sensor/actuator pair using a piezoelectric material layered with copper/brass and capable of monitoring viscosity changes in low volume liquids (e.g., vacutainer vial). Experiments performed with the new device show a definite pattern of wave propagation in viscous solutions. A numerical model is built to investigate the wave propagation in the fluid. For experimental measurements, the sensor part of the device detects the generated pressure wave in fluid (e.g., air, water, glycerin) by the actuator part. The phase shift between the actuator and the sensor signals is then recorded and plotted for different concentrations of glycerin and water at room temperature. The results of this study show a direct correlation between the phase shift and varying viscosity in the ultrasonic frequency range from 6 to 9 MHz. The numerical simulation, performed utilizing acoustic modal and harmonic response analysis, results also demonstrate the same trend as the experimental results: a phase shift increases with the viscosity of the fluid.
引用
收藏
页数:14
相关论文
共 39 条
  • [1] Characterization of Viscous and Viscoelastic Fluids Using Parallel Plate Shear-Wave Transducers
    Abdallah, Ali
    Reichel, Erwin K.
    Voglhuber-Brunnmaier, Thomas
    Jakoby, Bernhard
    [J]. IEEE SENSORS JOURNAL, 2016, 16 (09) : 2950 - 2957
  • [2] Micromachined Resonators: A Review
    Abdolvand, Reza
    Bahreyni, Behraad
    Lee, Joshua E. -Y.
    Nabki, Frederic
    [J]. MICROMACHINES, 2016, 7 (09)
  • [3] [Anonymous], 1990, Glycerine Oleochemical Division, V117, P1
  • [4] Utilizing acoustic pressure waves for sensing fluid properties
    Antlinger, H.
    Clara, S.
    Beigelbeck, R.
    Cerimovic, S.
    Keplinger, F.
    Jakoby, B.
    [J]. EUROSENSORS XXV, 2011, 25
  • [5] Sensing the characteristic acoustic impedance of a fluid utilizing acoustic pressure waves
    Antlinger, Hannes
    Clara, Stefan
    Beigelbeck, Roman
    Cerimovic, Samir
    Keplinger, Franz
    Jakoby, Bernhard
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 2012, 186 : 94 - 99
  • [6] MEMS sensors for density-viscosity sensing in a low-flow microfluidic environment
    Etchart, Isabelle
    Chen, Hua
    Dryden, Philip
    Jundt, Jacques
    Harrison, Christopher
    Hsu, Kai
    Marty, Frederic
    Mercier, Bruno
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 2008, 141 (02) : 266 - 275
  • [7] Gere J.M., 2004, Mechanics of Materials, V6th
  • [8] A vibrating plate fabricated by the methods of microelectromechanical systems (MEMS) for the simultaneous measurement of density and viscosity: Results for argon at temperatures between 323 and 423K at pressures up to 68 MPa
    Goodwin, A. R. H.
    Fitt, A. D.
    Ronaldson, K. A.
    Wakeham, W. A.
    [J]. INTERNATIONAL JOURNAL OF THERMOPHYSICS, 2006, 27 (06) : 1650 - 1676
  • [9] Physical Sensors for Liquid Properties
    Jakoby, Bernhard
    Vellekoop, Michael J.
    [J]. IEEE SENSORS JOURNAL, 2011, 11 (12) : 3076 - 3085
  • [10] Sensing fluid viscosity and density through mechanical impedance measurement using a whisker transducer
    Ju, Feng
    Ling, Shih-Fu
    [J]. MEASUREMENT SCIENCE AND TECHNOLOGY, 2013, 24 (05)