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This paper presents the results of a rheological test of a commercial magnetorheological (MR) fluid (MRF-132DG). The research includes the problem of measuring and interpreting limit stresses under conditions close to the magnetic saturation of the fluid. Four different limit stresses were determined, two related to the yield point and two related to the flow point. Methods for determining limit stresses, especially due to excitation conditions, were also analysed. The aim of this study is to determine the effect of selected parameters on the values of limit stresses of the selected MR fluid. An additional objective is to highlight the problems of defining and interpreting individual limit stresses in MR fluids, particularly in the context of selecting the values of these stresses for the purpose of modeling systems with MR fluids.
Słowa kluczowe
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Rocznik
Tom
Strony
408--416
Opis fizyczny
Bibliogr. 37 poz., rys., tab., wykr.
Twórcy
autor
- Department of Machine Design and Technology, Faculty of Mechanical Engineering and Robotics, AGH University of Science and Technology, Al. Mickiewicza 30, 30-059 Kraków, Poland
autor
- Department of Machine Design and Technology, Faculty of Mechanical Engineering and Robotics, AGH University of Science and Technology, Al. Mickiewicza 30, 30-059 Kraków, Poland
autor
- Department of Process Control, Faculty of Mechanical Engineering and Robotics, AGH University of Science and Technology, Al. Mickiewicza 30, 30-059 Kraków, Poland
Bibliografia
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- 3. de Vicente J, Klingenberg DJ, Hidalgo-Alvarez R. Magnetorheologi-cal fluids: a review. Soft Matter. 2011;7:3701-3710.
- 4. Yang J, Yan H, Wang X, Hu Z. Enhanced yield stress of magne-torheological fluids with dimer acid. Materials Letters. 2016;167:27-29.
- 5. Asiaban R, Khajehsaeid H, Ghobani E, Jabbari M. New magnetorhe-ological fluid with high stability: Experimental study and constitutive modelling. Polymer Testing. 2020;8:106512.
- 6. Kubík M, Válek J, Žáček J, Jeniš F, Borin D, et al. Transient re-sponse of magnetorheological fluid on a rapid change of magnetic field in shear mode. Scientific Reports. 2022;12:10612.
- 7. Giorgetti A, Baldanzini N, Biasiotto M, Citti P. Design and testing of a MRF rotational damper for vehicle applications. Smart Materials and Structures. 2010;19(6):065006.
- 8. Li DD, Keogh DF, Huang K, Chan QN, Yuen ACY, Menictas C et al. Modeling the response of magnetorheological fluid dampes under seismic conditions.
- 9. Kubík M, Macháček O, Strecker Z, Roupec J, Mazůrek I. Design and testing of magnetorheological valve with fast force response time and great dynamic force range. Smart Materials and Structures. 2017;26(4):047002.
- 10. Thakur MK, Sarkar C. Experimental and numerical study of magne-torheological clutch with sealing at larger radius disc. Defence Sci-ence Journal. 2020;70(6):575-582.
- 11. Patel S, Upadhyay R, Patel D. Design optimization of magnetorheo-logical brake using structural parameter: evaluation and validation. IOP Conference Series: Materials Science and Engineering. 2020;992:012004.
- 12. Horak W. Modeling of magnetorheological fluid in quasi-static squeeze flow mode. Smart Materials and Structures. 2018; 27: 065022.
- 13. Sapiński B, Gołdasz J. Development and performance evaluation of an MR squeeze-mode damper. Smart Materials and Structures. 2015;24(11):115007.
- 14. Sapiński B, Rosół M, Jastrzębski Ł, Gołdasz J. Outlook on the dy-namic behavior of an magnetorheological squeeze-mode damper prototype. Journal of Intelligent Material Systems and Structures. 2017;28(20):3025-3038.
- 15. Goncalves FD, Carlson JD. An alternate operation mode for MR fluids – Magnetic Gradient Pinch. Journal of Physics: Conference Se-ries. 2009;149:012050.
- 16. Gołdasz J, Sapiński B. Magnetostatic analysis of a pinch mode magnetorheological valve. Acta Mechanica et Automatica. 2017;11(3):229-232.
- 17. Sapiński B, Horak W. Rheological properties of MR fluids recom-mended for use in shock absorbers. Acta Mechanica et Automatica. 2013;7(2):107-110.
- 18. Quoc NV, Tuan LD, Hiep LD, Quoc HN, Choi SB. Material character-ization of MR fluid on performance of MRF based brake. Frontiers in Materials. 2019; 6: 125.
- 19. Lokhande SB, Patil SR. Experimental characterization and evaluation of magnetorheological clutch for an electric two-wheeler application. Measurement. 2021;175:109150.
- 20. Strecker Z, Jeniš F, Kubík M, Macháček O, Choi SB. Novel ap-proaches to the design of an ultra-fast magnetorheological valve for semi-active control. Materials. 2021;14(10):2500.
- 21. Gołdasz J, Sapiński B, Kubík M, Macháček O, Bańkosz W et al. Review: a survey on configurations and performance of flow-mode MR valves. Applied Sciences. 2022;12(12):6260.
- 22. Laun H.M, Gabril C, Kieburg Ch. Twin gap magneorheometer using ferromagnetic steel plates – Performance and validation. Journal of Rheology. 2010;54:327-354.
- 23. Wang K, Dong X, Li J, Shi K. Yield dimensionless magnetic effect and shear thinning for magnetorheological grease. Results in Phys-ics. 2020;18:103328.
- 24. Han S, Choi J, Han HN, Kim S, Seo Y. Effect of particle shape ani-sotropy on the performance and stability of magnetorheological flu-ids. ACS Applied Electronic Materials. 2021;3:2526-2533.
- 25. Jeon J, Koo S. Viscosity and dispersion state of magnetic suspen-sions. Journal of Magnetism and Magnetic Materials. 2012;324: 424-429.
- 26. Nagdeve L, Sidpara A, Jain VK, Ramkumar J. On the effect of rela-tive size of magnetic particles and abrasive particles in MR fluid-based finishing process. Machining Science and Technology. 2018;22(3):493-506.
- 27. Acharya S, Tak RSS, Singh SB, Kumar H. Characterization of mag-netorheological brake utilizing synthesized and commercial fluids. Materials Today: Procedings. 2021;46(19):9419-9424.
- 28. Mezger TG. The Rheology Handbook. 4th edition. Hanover: Vincentz Network GmbH & Co; 2014.
- 29. Elsaady W, Oyadiji SO, Nasser A. A review on multi-physics numeri-cal modelling in different applications of magnetorheological fluids. Journal of Intelligent Systems and Structures. 2020;31(16):1855-1897.
- 30. Chaudhuri A, Wereley NM, Radhakrishnan R, Choi SB. Rheological parameter estimation for a ferrous nanoparticle-based magnetorheo-logical fluid using genetic algorithms. Journal of Intelligent Material Systems and Structures. 2006;17(3):261-269.
- 31. Laun HM, Gabriel C, Kieburg C. Magnetorheological fluid (MRF) in oscillatory shear and parametrization with regard to MR device prop-erties. Journal of Physics: Conference Series. 2009;149:012067.
- 32. Wereley NM, Chaudhuri A, Yoo J-H, John S, Kotha S, Suggs A et al. Bidisperse magnetorheological fluids using Fe particles at nanometer and micron scale. Journal of Intelligent Material Systems and Struc-tures. 2006;17(5):393-401.
- 33. LORD Corporation. MRF-132DG Magneto-Rheological Fluid. DS7015 datasheet [Internet]. 2011 Nov [cited 2022 Jul 15]. Available from: https://lordfulfillment.com/pdf/44/DS7015_MRF-132DGMR Fluid.pdf
- 34. Barnes HA. The yield stress – a review or ‘παντα ρει’—everything flows? Journal of Non-Newtonian Fluid Mechanics. 1999;81 (1-2):133-178.
- 35. Ichwan B, Mazlan SA, Imaduddin F, Ubaidillah, Zamzuri H. Perfor-mance simulation on a magnetorheological valve module using three different commercial magnetorheological fluid. Advanced Materials Research. 2015;1123:35-41.
- 36. Szakal RA, Susan-Resiga D, Muntean S, Ladislau V. Magnetorheo-logical fluids flow modelling used in a magnetorheological brake con-figuration. 2019 International Conference on ENERGY and ENVI-RONMENT (CIEM). 2019:403-407.
- 37. Szakal RA, Mecea D, Bosioc AI, Borbáth I, Muntean S. Design and testing a magneto-rheological brake with cylindrical configuration. Proceeding of the Romanian Academy – Series A: Mathematics, Physics, Technical Sciences, Information Science. 2021;22(2/2021):189-197.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-81b80322-bc0c-4877-939f-a7d535f5a90c