Accès libre

Magnetorheological Self-Powered Vibration Reduction System with Current Cut-Off: Experimental Investigation

À propos de cet article

Citez

1. Ahamed R., Ferdaus Md. M., Li Y. (2016), Advancement in energy harvesting magneto-rheological fluid damper: A review, Korea-Australia Rheology Journal, 28(4), 355−379.10.1007/s13367-016-0035-2Search in Google Scholar

2. Chen C., Liao W.H. (2012), A self-sensing magnetorheological damper with power generation, Smart Materials and Structures, 21, 025014.10.1088/0964-1726/21/2/025014Search in Google Scholar

3. Choi K.M., Jung H. J., Lee H. J, Cho S.W. (2007), Feasibility study of smart passive control system equipped with electromagnetic induction device, Smart Materials and Structures, 16, 2323-2329.10.1088/0964-1726/16/6/036Search in Google Scholar

4. Choi Y.T., Werely N.M (2009), Self-powered magnetorhelogical dampers, Journal of Vibration and Acoustics, 131, 44−50.10.1115/1.3142882Search in Google Scholar

5. Jastrzębski Ł., Sapiński B. (2016), Electrical interface for a self-powered MR damper-based vibration reduction system, Acta Mechanica et Automatica, 10(3), 165−172.10.1515/ama-2016-0025Search in Google Scholar

6. Sapiński B., Snamina J., Jastrzębski Ł., Staśkiewicz A., (2011), Laboratory stand for testing of self-powered vibration reduction systems, Journal of Theoretical and Applied Mechanics, 49(4), 1169–1181.Search in Google Scholar

7. Sapiński B. (2008), An experimental electromagnetic induction device for a magnetorheological damper, Journal of Theoretical and Applied Mechanics, 46(4), 933−947.Search in Google Scholar

8. Sapiński B. (2010), Vibration power generator for a linear MR damper, Smart Materials and Structures, 19, 105012.10.1088/0964-1726/19/10/105012Search in Google Scholar

9. Sapiński B. (2011), Experimental study of a self-powered and sensing MR damper-based vibration control system, Smart Materials and Structures, 20, 105007.10.1088/0964-1726/20/10/105007Search in Google Scholar

10. Sapiński B., Rosół M., Jastrzębski Ł. (2011), Charakterystyki semiaktywnego układu redukcji drgań z odzyskiem energii, Pomiary, Automatyka, Kontrola, 57(5), 502−506.Search in Google Scholar

11. Sapiński B., Rosół M., Węgrzynowski M. (2016), Investigation of an energy harvesting MR damper in a vibration control system, Smart Materials and Structures, 25, 125017.10.1088/0964-1726/25/12/125017Search in Google Scholar

12. Wang D.H., Bai X.X. (2013), A magnetorheological damper with an integrated self-powered displacement sensor, Smart Materials and Structures, 22, 075001.10.1088/0964-1726/22/7/075001Search in Google Scholar

13. Wang D.H., Bai X.X., Liao W.H. (2009), Principle, design and modeling of an integrated relative displacement magnetorheological damper based on electromagnetic induction, Smart Materials and Structures, 18, 095025.10.1088/0964-1726/18/9/095025Search in Google Scholar

14. Xinchun G., Yonghu H., Yi R., Hui L., Jinping O. (2015), A novel self-powered MR damper: Theoretical and experimental analysis, Smart Materials and Structures, 24, 105033.10.1088/0964-1726/24/10/105033Search in Google Scholar

15. Zhu S.Y., Shen W.A., Xu Y.L., Lee W.C. (2012), Linear electromagnetic devices for vibration damping and energy harvesting: Modeling and testing, Engineering Structures, 34, 198−212.10.1016/j.engstruct.2011.09.024Search in Google Scholar