Developing of the Experimental Device that Test Magneto Rheological Fluid(MRF) Shear Yield Stress Nnder Non Uniform Composite Field

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In order to study magneto rheological fluid shear characteristics developing of magnetic field and temperature field under the actual condition (non-uniform composite field), Experimental device that test magneto rheological fluid (MRF) Shear yield stress under Non uniform composite field was developed. The device of the magnetic field distribution, temperature conductivity, shear yield stress are studied in theory and prototype production, and then testing the Shear yield stress of magneto rheological fluids of different magnetic field, temperature yield . The adjusting range of temperature of the experimental device is for 0-200, the magnetic field adjusting range by adjusting the current of the electromagnetic coil in the 0mt-300mt. Makes the air gap magnetic field intensity is 20mt, magneto rheological fluid in the shear rate at , the research of magneto rheological fluid shear yield stress with the magnetic field variation different temperatures (T=10, T=50, T=100,T=130, T=150, T=170) . The experimental results show that: in the 10-170, the temperature value basically does not affect the shear yield stress of the MR fluid, but the temperature is less than 10 and the temperature is greater than 170, the effects that temperature size on MRF Shear yield stress is relatively large.

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385-390

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October 2015

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© 2016 Trans Tech Publications Ltd. All Rights Reserved

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[1] D.L. Wang, M.Q. Rui and H.Y. Fu: Gearing Magneto Rheological Fluid Transient Temperature Field Study [J]. Agricultural Machinery, Vol. 44(2013) No. 4, pp.287-292.

Google Scholar

[2] Jolly M R, Bender J W and Carlson D J: Properties and Applications of Commercial Magneto Rheological Fluids[J]. Transactions of Intelligent Material Systems and Structures, Vol. 10(1999) No. 1, pp.5-13.

DOI: 10.1177/1045389x9901000102

Google Scholar

[3] Carlson J D: Adaptronics and Smart Structures[M]. Berlin Springer-Verlag, 1999. 182-190.

Google Scholar

[4] Weiss K D, Duclos: Controllable fluids: The Temperature Dependence of Post-yield Properties[J]. International Journal of Modern Physics B, Vol. 8(1994) No. 7, pp.3015-3032.

DOI: 10.1142/s0217979294001275

Google Scholar

[5] Z.Z. Tian and Y.F. Hou: The Research of MRF Gearing Temperature Characteristics[J]. Journal of Scientific Instrument, Vol. 33(2012) No. 3, pp.596-601.

Google Scholar

[6] C.R. Liao: Automobile Suspension System Magneto rheological Dampers Research (Ph.D., Chongqing University, China 2003), pp.28-32.

Google Scholar

[7] Z.W. Li, J.G. Zhen and Z.J. Li: Magnetic Damper Gap Structure Effect of Damper [J]. Magnetic Materials and Devices, Vol. 42(2011) No. 5, pp.48-50.

Google Scholar

[8] Lee D Y, Wereley N M and Tuper Hyde T: Analysis of Elect and Magneto Rheological Flow Mode Dampers Using Herschel Bullkley[C]. CA: SPIE Conference on Smart Structures and Materials Vol. 2000(2000) No. 134, pp.244-253.

DOI: 10.1117/12.384565

Google Scholar

[9] . Fu and T. Chen: Magneto Rheological Fluid and its Application in Engineering[J]. Shenyang University of Aeronautics and Astronautics, Vol. 28(2011) No. 1, pp.19-22.

Google Scholar

[10] Park E J, Stoikov D and Luz L F: A Performance Evaluation of an Automobile Magneto Rheological Brake Design with a Sliding Mode Controller[J]. Mechatronics, Vol. 16(2006) No. 7, pp.405-416.

DOI: 10.1016/j.mechatronics.2006.03.004

Google Scholar

[11] S. Pang, J.Y. Wu and L. Hu: Yield Stress and Temperature Effects of MRF[J]. Functional Materials, Vol. 28(1997) No. 2, pp.264-267.

Google Scholar

[12] H.T. Guo and W.H. Liao: A Novel Multifunctional Rotary Actuator with Magneto Rheological Fluid[J]. Smart Material and Structures, Vol. 31(2012) No. 6, p.12.

Google Scholar

[13] Lee U, Kim D, Hur N and Jeon D: Design Analysis and Experimental Evaluation of an MR Fluid Clutch[J]. Journal of Intelligent Material Systems and Structures, Vol. 10(1999) No. 9, pp.701-707.

DOI: 10.1106/ex6x-y4qq-xq5l-8jjv

Google Scholar

[14] J.H. Ma, J.G. Lv and L. Zhang: MRF Gear Transmission Torque Analysis and Testing[J]. Magnetic Materials and Devices, Vol. 36(2005) No. 4, pp.25-28.

Google Scholar

[15] J. Huang, J.Q. Zhang and Y. Yang: Analysis and Design of a Cylindrical Magneto Rheological Fluid Brake[J]. Journal of Materials Processing Technology, Vol. 129(2002) No. 1, pp.559-562.

DOI: 10.1016/s0924-0136(02)00634-9

Google Scholar

[16] G.J. Yu, C.B. Du and L.G. Sun: A New Composite Magneto Rheological Dampers Design and Simulation Analysis[J]. Machine Design and Research, Vol. 123(2007) No. 3, pp.113-117.

Google Scholar