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A Magnetorheological Damper with Bifold Valves for Shock and Vibration Mitigation
Min Mao
Department of Aerospace Engineering, Alfred Gessow Rotorcraft Center University of Maryland, College Park, MD 20742 USA
Wei Hu
Department of Aerospace Engineering, Alfred Gessow Rotorcraft Center University of Maryland, College Park, MD 20742 USA
Young-Tai Choi
Department of Aerospace Engineering, Alfred Gessow Rotorcraft Center University of Maryland, College Park, MD 20742 USA
Norman M. Wereley
Department of Aerospace Engineering, Alfred Gessow Rotorcraft Center University of Maryland, College Park, MD 20742 USA, wereley{at}umd.edu
This study presents the design and fabrication of a flow-mode bifold magnetorheological (MR) damper for shock and vibration mitigation for high piston velocity (15 mph or 6.75 m/s) as well as an evaluation of its performance at low speed. Based on a Bingham-plastic (BP) model, as well as a BP model coupled with a low speed hysteresis model, two theoretical MR damper models for flow-mode MR dampers are constructed. Using the design strategy associated with the Bingham-model based damper model, two MR damper designs for achieving the performance requirement with a limited space are considered: first, the conventional MR damper that has an MR valve inside the piston head and second, the bifold MR damper that has MR valves at each end of the damper. After numerically comparing the damping performances of the two MR damper designs, the bifold MR damper has been chosen because its dynamic range is better at high speed. The bifold MR damper was tested at a relatively low piston velocity using an MTS testing machine under sinusoidal loading. Experimental data compare well with the results predicted by the theoretical models.
Key Words: magnetorheological semi-active impact damper damping damper MR damper Bingham number Bingham plastic.
References
- Browne, A.L., McCleary, J.D., Namuduri, C.S. and Webb, S.R. 2004. `` Impact Performance of Magnetorheological Fluids,'' ASME International Mechanical Engineering Congress and Exposition, Anaheim, CA, USA.
- Choi, Y.T. Wereley, N.M. and Jeon, Y.S. 2005. `` Semi-Active Vibration Isolation Using Magnetorheological Isolators ,'' AIAA Journal of Aircraft, 42(5): 1244—1251 .
- Facey, W.B., Rosenfeld, N.C., Choi, Y.T., Wereley, N.M., Choi, S.B. and Chen, P.C. 2005. `` Design and Testing of a Compact Magnetorheological Damper for High Impulsive Loads,'' Inter J. Modern Physics B, 19(7—9): 1549—1555 .
- Hiemenz, G.J., Choi, Y.T. and Wereley, N.M. 2007. `` Semi-Active Control of Vertical Stroking Helicopter Crew Seat For Enhanced Crashworthiness ,'' AIAA Journal of Aircraft, 44(3): 1031—1034 .
- Hu, W. and Wereley, N.M. 2005. `` Magnetorheological Fluid and Elastomeric Lag Damper for Helicopter Stability Augmentation,'' Inter. J. of Modern Physics B, 19(7—9): 1471—1477 .[CrossRef]
- Mao, M., Choi, Y.T. and Wereley, N.M. 2005. `` Effective Design Strategy for a Magnetorheological Damper using a Nonlinear Flow Model,'' SPIE Symposium on Smart Materials and Structures, 5760: 446—455 .
- Peel, D.J., Stanway, R. and Bullough, W. 1996. `` Dynamic Modeling of an ER Vibration Damper for Vehicle Suspension Applications ,'' Smart Mater. Struct., 5(5): 591—606 .[CrossRef]
- Snyder, R., Kamath, G.M. and Wereley, N.M. 2001. `` Characterization and Analysis of Magnetorheological Damper Behavior Under Sinusoidal Loading,'' AIAA Journal, 39(7): 1240 — 1253 .
- Wang, X. and Gordaninejad, F. 1999. `` Flow Analysis of Field-controllable, Electro- and Magneto-rheological Fluids Using Herschel-Bulkley Model,'' J. Intelligent Mater. Systems and Structures, 10(8): 601 — 608 .
- Wereley, N.M. and Pang, L. 1998. `` Nondimensional Analysis of Semi-active Electrorheological and Magnetorheological Dampers Using Approximate Parallel Plate Models ,'' Smart Mater. Struct., 7(5): 732—743 .[CrossRef]
- Yang, G., Spencer, B.F., Jung, H.J. and Carlson, J.D. 2004. `` Dynamic Modeling of Large-Scale Magnetorheological Damper Systems for Civil Engineering Applications ,'' J. Engineering Mechanics, 130(9): 1107—1114 .[CrossRef]
Journal of Intelligent Material Systems and Structures, Vol. 18, No. 12,
1227-1232 (2007)
DOI: 10.1177/1045389X07083131

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