International Journal of Advanced Technology and Engineering Exploration (IJATEE) ISSN (P): 2394-5443 ISSN (O): 2394-7454 Vol - 7, Issue - 69, August 2020
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Electro and magnetorheological fluid damper study with controllable field-flow analysis for parallel plate duct

Rajender Kumar, Anil Kumar, Vijender Gill, Jitender Sheoran, Sarita , Sunil Nain and Promila

Abstract

Electro and magneto-rheological shock absorbers made most attractive choice of semi-active vibration control systems. A mg fluid damper is a system in the magnetic fluid where a damper is filled with a magnetic fluid. A magneto-rheological fluid damper is a system where a damper is filled with a magnetic fluid. Within this system the external current (voltage) regulating the magnetic field varies as an electromagnet in the magnetic fields of the piston within the damper. By adjusting the magnetic strength of the piston, the damping force of the damper is controlled. This paper offers a conceptual mathematical method for analyzing the behaviour, by combining fluid-mechanic approach to the fundamental equation of Herschel-Bulkley, of the field controllable electro-and magneto-rheological fluid flow through the parallel plate duct. Electro and magneto-rheological shock absorbers are built with simple expressions for the pressure drop solution. The quasi-stable flow study from Herschel-Bulkley would then be extended to include accumulator pressure, shear thickening and shear thinning effects. This, thus, accounts for the nonlinear dynamic electro and magneto-rheological fluid damper behaviour. Non-dimensional plug thickness is calculated for the creation of simpler descriptions for the exact model. This article offers a theoretical model of magneto-rheological dampers that regulate the area to predict the established behaviour. This has been shown to be an electro and magneto-rheological fluid threshold modeling device, with the simplified H-Bulkley model for parallel plates. The results of the assessments show that the most promising magneto-rheological damper with less than 3 percent of the relative maximum errors are modern semi-active instruments for structural seismic response observed.

Keyword

Parallel plate duct, Rheological fluid, etc.

Cite this article

Kumar R, Kumar A, Gill V, Sheoran J, SaritaNain S, Promila

Refference

[1][1]Kumar JS, Paul PS, Raghunathan G, Alex DG. A review of challenges and solutions in the preparation and use of magnetorheological fluids. International Journal of Mechanical and Materials Engineering. 2019; 14(13):1-18.

[2][2]De Vicente J, Klingenberg DJ, Hidalgo-Alvarez R. Magnetorheological fluids: a review. Soft Matter. 2011; 7(8):3701-10.

[3][3]Sudo S, Funaoka M, Nishiyama H. Impact of droplets of magneto-rheological suspension under applied magnetic fields. Journal of Intelligent Material Systems and Structures. 2002; 13(7-8):409-13.

[4][4]Rabinow J. The Magnetic Fluid Clutch AIEE Transactions, 67.

[5][5]Wang X, Gordaninejad F. Herschel-bulkley analysis of electro-and magneto-rheological controllable fluids in flow mode. In electro-rheological fluids and magneto-rheological suspensions 2000 (pp. 568-78).

[6][6]Zhou H, Zhao W, Zhang H, Wang Y, Wu X, Sun Z. Magnetorheological seal: a review. International Journal of Applied Electromagnetics and Mechanics. 2020:1-24.

[7][7]Mäkelä KK. Characterization and performance of electrorheological fluids based on pine oils. Journal of Intelligent Material Systems and Structures. 1999; 10(8):609-14.

[8][8]Pfeiffer C, Mavroidis C, Bar-Cohen Y, Dolgin BP. Electrorheological-fluid-based force feedback device. In telemanipulator and telepresence technologies VI 1999 (pp. 88-99). International Society for Optics and Photonics.

[9][9]Adali S. Optimization of laminated composites and overview of smart material applications. In modern trends in composite laminates mechanics 2003 (pp. 227-80). Springer, Vienna.

[10][10]Chen DC, Chen LR. Application of the Taguchi method for finite element analysis of a shear-type magnetorheological fluid damper. Advances in Mechanical Engineering. 2020.

[11][11]Sheng P, Wen W. Electrorheological fluids: mechanisms, dynamics, and microfluidics applications. Annual Review of Fluid Mechanics. 2012; 44:143-74.

[12][12]Yu X, Cheng H, Zhang M, Zhao Y, Qu L, Shi G. Graphene-based smart materials. Nature Reviews Materials. 2017; 2(9):1-3.

[13][13]Rutten SH. Smart materials in automotive applications. Internship Report MT0319, Technische Universiteit Eindhoven, the Netherlands. 2003.

[14][14]Palomares E, Morales AL, Nieto AJ, Chicharro JM, Pintado P. Modelling magnetorheological dampers in preyield and postyield regions. Shock and Vibration. 2019.

[15][15]Wang X, Gordaninejad F. Field-controllable electro-and magneto-rheological fluid dampers in flow mode using Herschel-Bulkley theory. In smart structures and materials 2000: damping and isolation 2000 (pp. 232-43). International Society for Optics and Photonics.

[16][16]Frigaard IA, Paso KG, de Souza Mendes PR. Bingham’s model in the oil and gas industry. Rheologica Acta. 2017; 56(3):259-82.

[17][17]Yang G, Spencer Jr BF, Jung HJ, Carlson JD. Phenomenological model of large-scale MR damper systems. In advances in building technology 2002 (pp. 545-52). Elsevier.

[18][18]Gavin H, Hoagg J, Dobossy M. Optimal design of MR dampers. In proceedings of us-japan workshop on smart structures for improved seismic performance in urban regions 2001 (pp. 225-36).

[19][19]Jalili N. A comparative study and analysis of semi-active vibration-control systems. J. Vib. Acoust. 2002; 124(4):593-605.

[20][20]Chambon G, Freydier P, Naaim M, Vila JP. Asymptotic expansion of the velocity field within the front of viscoplastic surges: comparison with experiments. Journal of Fluid Mechanics. 2020.

[21][21]Wang X, Gordaninejad F. Flow analysis of field-controllable, electro-and magneto-rheological fluids using Herschel-Bulkley model. Journal of Intelligent Material Systems and Structures. 1999; 10(8):601-8.

[22][22]Wang X, Gordaninejad F. Flow analysis and modeling of field-controllable, electro-and magneto-rheological fluid dampers. Journal of Applied Mechanics. 2007; 74(1): 13-22.

[23][23]Choi SB, Song HJ, Lee HH, Lim SC, Kim JH, Choi HJ. Vibration control of a passenger vehicle featuring magnetorheological engine mounts. International Journal of Vehicle Design. 2003; 33(1-3):2-16.