Influence of Permanent Magnets Installation Approach on the Torque of а Magneto-Rheological Disk Brake

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Abstract:

Magnetorheological braking devices function due to the organization of domain structures between liquid and solid magnetic materials under the action of an electromagnetic or magnetic field. The disc is most widely used as a rotating braking element that made of a solid magnetic material due to the large area of contact with a magnetorheological fluid. Many factors affect the braking characteristics of the magnetorheological disc brake. Specifically, the value of the magnetic field and how the field is distributed across the work element is significantly affected at the braking torque. There are different ways to generate a magnetic field. In this study, the method of installation of permanent magnets into the construction, allowing to increase the braking torque of the magnetorheological disc brake is proposed. Simulation modelling showing the distribution of the magnetic field across the disk depending on the installation of permanent magnets with different pole orientations were carried out. The model takes into account the possibility of increasing the gap between solid magnetic materials of the structure, inside them which the magnetorheological fluid is placed. Comparative estimation of the distribution of the magnetic fields depending on the chosen method of installation of permanent magnets with different orientations of their poles is carried out. Further research is planned to focus on a comparative assessment of the distribution of magnetic fields depending on the selected material of the braking chamber.

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[1] A.A. Vorotnikov, D.D. Klimov, E.V. Romash, O.S. Bashevskaya, Y.V. Poduraev, E.A. Bazykyan, A.A. Chunihin. Cutting velocity accuracy as a criterion for comparing robot trajectories and manual movements for medical industry, Mechanics & Industry18, 712 (2017).

DOI: 10.1051/meca/2017047

Google Scholar

[2] Solovyev, M[ikhail]; Vorotnikov, A[ndrei]; Klimov, D[aniil]; Kovalskii, V[ladislav] & Poduraev, Y[uriy] V[.] (2017). Control System of the Articulated Arm Braking Mechatronic Machine (AABMM), Proceedings of the 28th DAAAM International Symposium, pp.1002-1009, B. Katalinic (Ed.), Published by DAAAM International, ISBN 978-3-902734-11-2, ISSN 1726-9679, Vienna, Austria.

DOI: 10.2507/28th.daaam.proceedings.139

Google Scholar

[3] A. A. Levin, D. D. Klimov, A. A. Nechunaev, A. A. Vorotnikov, L. S. Prokhorenko, E. V. Grigorieva, D. A. Astakhov, Y. V. Poduraev & D. N. Panchenkov. The comparison of the process of manual and robotic positioning of the electrode performing radiofrequency ablation under the control of a surgical navigation system, Scientific Reports 10(1):8612, May 2020,.

DOI: 10.1038/s41598-020-64472-9

Google Scholar

[4] L. Prokhorenko, D. Klimov, D. Mishchenkov, and Y. Poduraev, Surgeon-robot interface development framework, Computers in Biology and Medicine, vol. 120, May, 2020,.

DOI: 10.1016/j.compbiomed.2020.103717

Google Scholar

[5] Chunikhin A.A., Bazikyan E.A., Poduraev Yu.V., Vorotnikov A.A., Klimov D.D. Comparative experimental assessment of the accuracy of nanosecond laser surgery of the oral cavity when the instrument is moved by a robotic complex and a surgeon. // Russian Open Medical Journal. - 2019. - V.8 (3): e0307.

DOI: 10.15275/rusomj.2019.0307

Google Scholar

[6] Chunikhin, A. A., Poduraev, Yu. V., Vorotnikov, A. A., Klimov, D. D., Sahakyan, M. Y., Bazikyan, E. A. Efficiency Assessment of Nanosecond Laser Robotic Maxillofacial Area Surgery in Experiment, Sovremennye Tehnologii V Medicine. 2017. V 9, №4, pp.123-128.

DOI: 10.17691/stm2017.9.4.15

Google Scholar

[7] Andrei A. Vorotnikov, Daniil D. Klimov, Elena A. Melnichenko and Yuri V. Poduraev, and Ernest A. Bazykyan, Criteria for Comparison of Robot Movement Trajectories and Manual Movements of a Doctor for Performing Maxillofacial Surgeries,, International Journal of Mechanical Engineering and Robotics Research, Vol. 7, No. 4, pp.361-366, July 2018.

DOI: 10.18178/ijmerr.7.4.361-366

Google Scholar

[8] Andrei A. Vorotnikov, Maxim A. Buinov, Semen V. Bushuev, Yuri V. Poduraev, and Andrei A. Chunihin, Standard Deviation from the Average Cutting Velocity as a Criterion for Comparing Robot Trajectories and Manual Movements of a Doctor for Performing Surgical Operations in Maxillofacial Surgery,, International Journal of Mechanical Engineering and Robotics Research, Vol. 7, No. 3, pp.319-323, May 2018.

DOI: 10.18178/ijmerr.7.3.319-323

Google Scholar

[9] A. A. Vorotnikov, Y. V. Poduraev, and E. V. Romash, Estimation of Error in Determining the Centers of Rotation of Links in a Kinematic Chain for Industrial Robot Calibration Techniques, Measurement Techniques, vol. 58, no. 8, pp.864-871, Nov, 2015.

DOI: 10.1007/s11018-015-0809-9

Google Scholar

[10] Vorotnikov, A[ndrei]; Bashevskaya, O[lga]; Ilyukhin, Y[uri]; Romash, E[lena]; Isaev, A[.] V[.] & Poduraev, Y[uri] (2016). Geometrical Approach for Industrial Robot Axis Calibration Using Laser Tracker, Proceedings of the 26th DAAAM International Symposium, pp.0897-0904, B. Katalinic (Ed.), Published by DAAAM International, ISBN 978-3-902734-07-5, ISSN 1726-9679, Vienna, Austria.

DOI: 10.2507/26th.daaam.proceedings.125

Google Scholar

[11] Vorotnikov, A[ndrei]; Romash, E[lena]; Isaev, A[lexander]; Bashevskaya,O[lga]; Bianchi, G[iacomo] & Poduraev, Y[uri] (2016). Uncertainty Estimation of Axes Direction Determination of Industrial Robot Using an Ellipsoid Concentration Model, Proceedings of the 27th DAAAM International Symposium, pp.0480-0486, B. Katalinic (Ed.), Published by DAAAM International, ISBN 978-3-902734-08-2, ISSN 1726-9679, Vienna, Austria.

DOI: 10.2507/27th.daaam.proceedings.072

Google Scholar

[12] M. A. Solovyev, A. A. Vorotnikov, A. A. Grin, D. D. Klimov, Yu. V. Poduraev, and V. V. Krylov. Conceptualization of the Construction of a Device for Measuring Forces and Torques during Neurosurgical Procedures. Medical equipment №3, 2020 / pp.28-32,.

DOI: 10.1007/s10527-020-10002-w

Google Scholar

[13] Y.V. Poduraev. Mechatronics: Basics, Methods, Application: Tutorial for University Students. — 2nd ed., Master. - M: Mechanical Engineering, 2007, 256 pp. ISBN 978-5-217-03388-1.

Google Scholar

[14] Zh.P. Ahromeev Robotics and Flexible Automated Manufacturing. (In 9 books.) Drives of robotic systems. [Book]. - Moscow: Publishing house Higher School,, 1986. - Vol. 2.

Google Scholar

[15] B.A. Gordeyev, S.N. Okhulkov, A.S. Plekhov, P.A. Zlobin Application of magnetorheological fluids in mechanical engineering [Primeneniye magnitoreologicheskikh zhidkostey v mashinostroyenii], Privolzhskiy nauchnyy zhurnal [Volga scientific journal], 2014, no.4, pp.29-42. (in Russ.).

Google Scholar

[16] O.A. Komleva, A.A. Ignatiev Software for controlling a magnetorheological element in a robotic system. SSTU Bulletin №3(67), 2012, pp.190-194. (in Russ.).

Google Scholar

[17] B.A. Gordeev, S.N. Okhulkov, A.I. Yermolayev, D.Yu. Titov Investigation of the influence of temperature on amplitude frequency characteristics of magnetocontrolled hydroprop. Current problems of electricity 2019, pp.64-76.

Google Scholar

[18] Hui Huang, Chen Chen, Zhi-Chao Zhang, Ji-Nan Zheng, Yu-Zheng Li, Shu-Mei Chen Design and experiment of a new structure of MR damper for improving and self-monitoring the sedimentation stability of MR fluid, Smart Materials and Structures, 2020, № 7, p.075019.

DOI: 10.1088/1361-665x/ab8839

Google Scholar

[19] Tae-Hoon Lee and Seung-Bok Choi On the response time of a new permanent magnet based magnetorheological damper: experimental investigation. Smart Materials and Structures, Volume 28, Number 1, 2018, article id. 014001.

DOI: 10.1088/1361-665x/aaf0dc

Google Scholar

[20] Rakesh Jinaga, Jagadeesha Thimmaiah, Shreedhar Kolekar & Seung-Bok Choi Design, fabrication and testing of a magnetorheologic fluid braking system for machine tool application, SN Applied Sciences № 4, 2019.

DOI: 10.1007/s42452-019-0236-7

Google Scholar

[21] R. Siti Lydia, R. Mokhtar, A.B. Muhamad Husaini and B.J. Norhaniza Design and development of coil casing MRF brake system, The 2nd International Conference on Automotive Innovation and Green Vehicle, Volume 90, 2017.

DOI: 10.1051/matecconf/20179001017

Google Scholar

[22] E.M. Attia, N.M. Elsodany, H.A.El-Gamal, M.A. Elgohary, Theoretical and experimental study of magnetorheological fluid disc brake, Alexandria Engineering Journal Volume 56, Issue 2, June 2017, Pages 189-200.

DOI: 10.1016/j.aej.2016.11.017

Google Scholar

[23] Juan Carlos De La Llera Martin, Alan Pillip, Stenberg Cunchillos, René Zemp e.a. Magnetorheological damper. Patent WIPO (PCT), WO2013059951A1, (2012).

Google Scholar

[24] Alex Shafer, Mehrdad R. Kermani e.a. Magneto-rheological clutch with sensors measuring electromagnetic field strength. Patent Canada, CA2776800A1. (2010).

Google Scholar

[25] Mario Versaci, Annunziata Palumbo Magnetorheological Fluids: Qualitative comparison between a mixture model in the Extended Irreversible Thermodynamics framework and an Herschel–Bulkley experimental elastoviscoplastic model, International Journal of Non-Linear Mechanics, 2020, Volume 118.

DOI: 10.1016/j.ijnonlinmec.2019.103288

Google Scholar

[26] Koray Özsoy, Mustafa Resit Usal A mathematical model for the magnetorheological materials and magneto reheological devices, Engineering Science and Technology, an International Journal, 2018, Volume 21.

DOI: 10.1016/j.jestch.2018.07.019

Google Scholar

[27] Butarev I. Ju., Potapov, L.A. Comsol multiphysics: Modelirovanie electromehanicheckikh ustroystv [Comsol multiphysics: Modeling of electromechanical devices]. Bryansk: Izdatel'stvo Bryanskogo gosudarstvennogo tehnicheskogo universi-teta, 113, (2011). ISBN 978-5-89838-520-0. (in Russian).

Google Scholar

[28] E.S. Belyaev Magnetorheological fluids: technologies of creation and application / E.S. Belyaev, A.I. Ermolaev, E.Yu. Titov, S.F. Tumakov. - Nizhny Novgorod State Technical University. R.E. Alekseeva, Nizhny Novgorod, 2017 .-- 94 p.

DOI: 10.31432/1994-2443-2018-13-1-34-38

Google Scholar