Alternating current response and visualization of electrorheological fluid

被引:2
|
作者
Bauerochs, Tobias [1 ]
Huo, Xiaoye [2 ]
Yossifon, Gilad [2 ]
Ulrich, Stephan [1 ]
Schneider, Steffen [3 ]
Bruns, Rainer [1 ]
机构
[1] Helmut Schmidt Univ, Inst Machine Elements & Tech Logist, Holstenhofweg 85, D-22043 Hamburg, Germany
[2] Technion Israel Inst Technol, Micro & Nanofluid Devices Lab, Fac Mech Engn, Haifa, Israel
[3] Bundeswehr Res Inst Mat Fuels & Lubricants, Erding, Germany
关键词
Electrorheological fluid; ER-Effect; ER-Fluid; electrorheological fluid; ER-Valve; alternating current response; visualization; ELECTROVISCOUS FLUIDS; FREQUENCY; SUSPENSIONS; MECHANISMS; DESIGN; FIELDS;
D O I
10.1177/1045389X19888789
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The electrorheological effect produced by an ER-Fluid with an applied electric field is not yet fully understood. However, it is significant to understand how the viscosity increases, and thus, the ER-Effect works to optimally design ER-Applications. In this article, the ER-Effect and its response to different voltage forms with varying frequencies within a miniature fluidic device are described and visualized using a microscope. The different pressure drops across the channel are measured. Problems such as long saturation times using microchannels in combination with low flow velocities are described and explained. An electric frequency dependence of the chain formation has been discovered and that the use of alternating current offers superior performance in comparison with direct current. The optimal operating point for achieving the largest possible pressure difference is from 5 to 10 Hz for square wave voltages. In this frequency range, the performance of the electrorheological effect is greater than using direct current. From approximately 10 Hz, the power decreases with increasing electric frequency. Above 20 Hz, direct current is superior to alternating current voltage, so is not recommended for use in this range.
引用
收藏
页码:288 / 296
页数:9
相关论文
共 50 条
  • [1] Influence of a surface film on conducting particles on the electrorheological response with alternating current fields
    Wu, CW
    Conrad, H
    JOURNAL OF APPLIED PHYSICS, 1997, 81 (12) : 8057 - 8063
  • [2] Differences in the electrorheological response of a particle suspension under direct current and alternating current electric fields
    H. See
    A. Kawai
    F. Ikazaki
    Colloid and Polymer Science, 2002, 280 : 24 - 29
  • [3] Differences in the electrorheological response of a particle suspension under direct current and alternating current electric fields
    See, H
    Kawai, A
    Ikazaki, F
    COLLOID AND POLYMER SCIENCE, 2002, 280 (01) : 24 - 29
  • [4] Nonlinear alternating current responses of electrorheological solids
    Huang, JP
    JOURNAL OF PHYSICAL CHEMISTRY B, 2005, 109 (11): : 4824 - 4828
  • [5] Visualization Experiment on Electrorheological Fluid in Dynamic Coupling Field
    Zhu, Shisha
    Luo, Qi
    Liu, Jingang
    Fujita, Toyohisa
    ADVANCES IN MATERIALS SCIENCE AND ENGINEERING, 2016, 2016
  • [6] Nonlinear ac response of an electrorheological fluid
    Wan, JTK
    Gu, GQ
    Yu, KW
    PHYSICAL REVIEW E, 2001, 63 (05):
  • [7] Transient response of compressed electrorheological fluid
    Tian, Y
    Zhang, ML
    Meng, YG
    Wen, SZ
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2005, 290 (01) : 289 - 297
  • [8] Nonlinear alternating current responses in electrorheological fluids: Dynamic effects
    Yu, K. W.
    Tian, W. J.
    Huang, J. P.
    INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2007, 21 (28-29): : 4825 - 4831
  • [9] Dynamic effects on nonlinear alternating current responses in electrorheological fluids
    Tian, WJ
    Huang, JP
    Yu, KW
    PHYSICAL REVIEW E, 2006, 73 (03):
  • [10] Transient Response of an Electrorheological Fluid in Shear Flow
    Choi, Byung-Ha
    Nam, Yun-Joo
    Park, Myeong-Kwan
    TRANSACTIONS OF THE KOREAN SOCIETY OF MECHANICAL ENGINEERS B, 2009, 33 (06) : 411 - 417