A flow sensing method of power spectrum based on piezoelectric effect and vortex-induced vibrations

被引:18
作者
Hu, Jie [1 ]
Peng, Hanmin [1 ]
Liu, Tingyu [2 ]
Yao, Xinke [1 ]
Wu, Huiyang [1 ]
Lu, Penghui [1 ]
机构
[1] Nanjing Univ Aeronaut & Astronaut, State Key Lab Mech & Control Mech Struct, Nanjing 210016, Jiangsu, Peoples R China
[2] Nanjing Univ Sci & Technol, Jiangsu Engn Lab High End Mfg Equipment & Technol, Nanjing 210094, Jiangsu, Peoples R China
基金
中国国家自然科学基金;
关键词
Piezoelectric sensor; Vortex-induced vibrations; Fluid-solid-electric coupling calculation; Power spectrum; LabVIEW; ENERGY; NANOGENERATOR; SENSOR; NOISE;
D O I
10.1016/j.measurement.2018.08.020
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This study introduces a piezoelectric sensor based on vortex-induced vibrations. Such sensor module is endowed with a piezoelectric cantilever and cylinder, which can be used to measure the wind flow from the characteristic signals of vortex. In contrast to the conventional sensors using peak-to-peak, zero-topeak or root-mean-square voltages as the characteristics of the vortex, the proposed sensor takes advantage of the power spectrum in the vortex frequency as the sensing intensity of the characteristic vortex, contributing to successfully sensing weak flow signals. Then, we propose a fluid-solid-electric coupling finite element method to investigate the relationship between the power spectrum and the geometrical parameters (including size and position). The calculated and experimental results show that increasing the cylinder's diameter can linearly enhance the optimal sensing region and the power spectrum, but the region does not change with altering the amplitude of wind velocity. In our experiment, the sensor can effectively test the wind velocity of 1.5 m/s, which is difficult to be measured by traditional sensors. Therefore, this fluid-solid-electric coupling calculation method can be used to design the structure of flow sensor. (C) 2018 Elsevier Ltd. All rights reserved.
引用
收藏
页码:473 / 481
页数:9
相关论文
共 36 条
  • [1] Phenomena and modeling of piezoelectric energy harvesting from freely oscillating cylinders
    Abdelkefi, A.
    Hajj, M. R.
    Nayfeh, A. H.
    [J]. NONLINEAR DYNAMICS, 2012, 70 (02) : 1377 - 1388
  • [2] The performance of a self-excited fluidic energy harvester
    Akaydin, H. D.
    Elvin, N.
    Andreopoulos, Y.
    [J]. SMART MATERIALS AND STRUCTURES, 2012, 21 (02)
  • [3] Wake of a cylinder: a paradigm for energy harvesting with piezoelectric materials
    Akaydin, H. D.
    Elvin, N.
    Andreopoulos, Y.
    [J]. EXPERIMENTS IN FLUIDS, 2010, 49 (01) : 291 - 304
  • [4] Numerical Simulation of Output Response of PVDF Sensor Attached on a Cantilever Beam Subjected to Impact Loading
    Cao Vu Dung
    Sasaki, Eiichi
    [J]. SENSORS, 2016, 16 (05)
  • [5] Dai Huaping, 2013, Process Automation Instrumentation, V34, P87
  • [6] Energy Harvesting from Von Karman Vortices in Airflow for Autonomous Sensors
    Demori, Marco
    Ferrari, Marco
    Ferrari, Vittorio
    Farise, Stefano
    Poesio, Pietro
    [J]. 28TH EUROPEAN CONFERENCE ON SOLID-STATE TRANSDUCERS (EUROSENSORS 2014), 2014, 87 : 775 - 778
  • [7] A numerical investigation on piezoelectric energy harvesting from Vortex-Induced Vibrations with one and two degrees of freedom
    Franzini, Guilherme R.
    Bunzel, Lucas O.
    [J]. JOURNAL OF FLUIDS AND STRUCTURES, 2018, 77 : 196 - 212
  • [8] Flow Energy Harvesting Using Piezoelectric Cantilevers With Cylindrical Extension
    Gao, Xiaotong
    Shih, Wei-Heng
    Shih, Wan Y.
    [J]. IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2013, 60 (03) : 1116 - 1118
  • [9] Fully 3D Printed Multi-Material Soft Bio-Inspired Whisker Sensor for Underwater-Induced Vortex Detection
    Gul, Jahan Zeb
    Su, Kim Young
    Choi, Kyung Hyun
    [J]. SOFT ROBOTICS, 2018, 5 (02) : 122 - 132
  • [10] Guo L, 2016, INT CONF UBIQ ROBOT, P248, DOI 10.1109/URAI.2016.7625748