Yield stress and flow behavior of concentrated ferrofluid-based magnetorheological fluids: the influence of composition

被引:38
作者
Susan-Resiga, Daniela [1 ]
Vekas, Ladislau [1 ,2 ]
机构
[1] Romanian Acad, Timisoara Branch, Ctr Fundamental & Adv Tech Res, Lab Magnet Fluids, Timisoara, Romania
[2] Univ Politehn Timisoara, Res Ctr Hydrodynam Complex Fluids, Timisoara, Romania
关键词
Ferrofluid; Magnetorheological fluid; Extremely bidisperse suspension; Yield stress; Magnetoviscous effect;
D O I
10.1007/s00397-014-0785-z
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
In this paper, the magnetorheological (MR) and magnetoviscous properties of ferrofluid-based iron particle suspensions were investigated. The 2.1-A mu m mean size Fe particles were dispersed in high-concentration transformer oil-based ferrofluid, the iron particle volume fraction in the resulting nano-micro composite magnetorheological fluid samples varying from I broken vertical bar (Fe) = 5 to 40 %. The ferrofluid carrier has phi (p) = 23 % solid volume fraction of magnetic nanoparticles stabilized with chemisorbed oleic acid monolayer and without any excess surfactant. In the absence of the field, the ferrofluid has a quasi-Newtonian behavior with a weak shear thinning tendency. The static yield stress shows an increase of about 3 orders of magnitude for an iron particle content of approx. I broken vertical bar (Fe) = 25 % (I broken vertical bar (tot) = 42.25 %), while above this value, a saturation tendency is observed. The dynamic yield stress (Bingham model) also increases with the magnetic induction and the particle volume fraction; however, the saturation of the MR effect is less pronounced. The relative viscosity change has a maximum at I broken vertical bar (Fe) = (10-15) % due to the accelerated increase of the effective viscosity of the composite for higher Fe content. Addition of micrometer-sized iron particles to a concentrated ferrofluid without any supplementary stabilizing agent proved to be a direct and simple way to control the magnetorheological and magnetoviscous behavior, as well as the saturation magnetization of the resulting nano-micro composite fluid to fulfill the requirements of their use in various MR control and rotating seal devices.
引用
收藏
页码:645 / 653
页数:9
相关论文
共 29 条
[1]  
Bica D., 2009, Romanian Patent, Patent No. [RO 122725, 122725]
[2]  
Bica D., 2000, Romanian Patent RO, Patent No. [115533: B1, 115533]
[3]  
Borbath Tunde, 2010, International Journal of Fluid Machinery and Systems, V4, P67, DOI 10.5293/IJFMS.2011.4.1.067
[4]  
Bossis G, 2002, LECT NOTES PHYS, V594, P202
[5]   MR fluid, foam and elastomer devices [J].
Carlson, JD ;
Jolly, MR .
MECHATRONICS, 2000, 10 (4-5) :555-569
[6]   Magnetorheological fluids: a review [J].
de Vicente, Juan ;
Klingenberg, Daniel J. ;
Hidalgo-Alvarez, Roque .
SOFT MATTER, 2011, 7 (08) :3701-3710
[7]  
Ginder JM, 1996, US patent, Patent No. 5549837
[8]  
Goncalves F. D., 2006, Shock and Vibration Digest, V38, P203, DOI 10.1177/0583102406065099
[9]   Dynamic characterization of extremely bidisperse magnetorheological fluids [J].
Iglesias, G. R. ;
Lopez-Lopez, M. T. ;
Duran, J. D. G. ;
Gonzalez-Caballero, F. ;
Delgado, A. V. .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2012, 377 :153-159
[10]   Mason numbers for magnetorheology [J].
Klingenberg, Daniel J. ;
Ulicny, John C. ;
Golden, Mark A. .
JOURNAL OF RHEOLOGY, 2007, 51 (05) :883-893