Author:
Wang Hongyun,Bi Cheng,Zhang Yongju,Zhang Li,Zhou Fenfen
Abstract
AbstractCompressions of magnetorheological (MR) fluids have been carried out under instantaneous magnetic fields. The yield strength of the MR fluid in compressive mode has been derived by assuming that it was a transformed shear flow in Bi-visous model. The compressive stresses have experimentally studied under different magnetic fields, different initial gap distances and different compressive velocities. The nominal yield shear stresses of the compressed MR fluid under different influential factors have been calculated. The compressive stress increased in a power law as the applied magnetic field increased, while it decreased as the initial gap distance and the compressive velocity increased. With the increase of magnetic field, the difference between the nominal yield shear stress curves increased, and the exponents of the power law increased with the increase of the magnetic field strengths. A larger initial gap distance and a lower compressive velocity resulted in a higher nominal yield shear stress under the same instantaneous magnetic field. The achieved results of the nominal yield shear stress with magnetic field seemed to deviate from the prediction of dipole model, and the chain structure aggregation effect, the sealing effect and the friction effect by compression should be considered.
Funder
the National Natural Science Foundation of China
Zhejiang Province Public Welfare Technology Application Research Project
Natural Science Foundation of Zhejiang Province
Publisher
Springer Science and Business Media LLC
Reference28 articles.
1. Zhanga, Y., Lib, D., Cuib, H. & Yang, J. A new modified model for the rheological properties of magnetorheological fluids based on different magnetic field. J. Magn. Magn. Mater. 500, 166377 (2020).
2. Zhu, W. et al. Iron nanoparticles-based magnetorheological fluids: A balance between MR effect and sedimentation stability. J. Magn. Magn. Mater. 491, 165556 (2019).
3. Kwon, S. H. et al. Fe-Ga alloy based magnetorheological fluid and its viscoelastic characteristics. J. Ind. Eng. Chem. 82, 433–438 (2020).
4. Rahim, M. S. A. & Ismail, I. Review of magnetorheological fluids and nanofluids thermal behaviour. Mater. Sci. Eng. 100(1), 012040 (2015).
5. Tang, X., Zhang, X., Tao, R. & Rong, Y. Structure-enhanced yield stress of magnetorheological fluids. J. Appl. Phys. 87(5), 2634–2638 (2000).
Cited by
10 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献