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Physics of a Particle on a Rotating Hoop

Experiment and Theory

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Abstract

The simple textbook problem of a particle on a vertical, rotating hoop is analysed both in theory and through experiments. We begin by detailing out a somewhat generalised theory, where the effect of dry friction as well as the possibility of a shift in the vertical axis of rotation are incorporated. The bifurcation curves (plots of the angular position of stability versus the angular frequency of rotation) are obtained for all cases (i.e. with and without friction and a shift of the axis). Thereafter we present the experimental set-up fabricated by us and elaborate on the various measurements performed. Finally, we demonstrate through our experiments how well the theoretical results on the bifurcation curves tally with the experimental findings. The match between theory and experiment is found to be reasonably satisfactory. We conclude by mentioning how various aspects of this simple problem as well as its generalisations and extensions, are linked with different advanced areas of physics.

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Suggested Reading

  1. H Goldstein, Classical Mechanics, 2nd Edition, Narosa Publishing House, New Delhi, India (2001).

    Google Scholar 

  2. S H Strogatz, Nonlinear Dynamics and Chaos, Perseus Books Publishing (1994), p.55, p.61.

  3. A Rosebrock, Ball Tracking with OpenCV, PyImageSearch Blog, 2015.

  4. A Rosebrock, Measuring the size of objects in an image with OpenCV, PyImageSearch Blog, 2016.

  5. T E Baker and A Bill, Jacobi elliptic functions and a complete solution of the bead on the hoop problem, American Journal of Physics, Vol.80, 506 2012.

    Article  Google Scholar 

  6. A A Burov, On bifurcations of relative equilibria of a heavy bead sliding with dry friction on a rotating circle, Acta Mechanica, 212(3–4), pp.349–354, 2010

    Article  Google Scholar 

  7. A A Burov and I A Yakushev, Bifurcations of the relative equilibria of a heavy bead on a rotating hoop with dry friction, Journal of Applied Mathematica and Mechanics, Vol.78, 460, 2014.

    Article  Google Scholar 

  8. L A Raviola, M E Véliz, H D Salomone, N A Olivieri and E E Rodríguez, The bead on a rotating hoop revisited: an unexpected resonance, European Journal of Physics, Vol.38, p.015005, 2017.

    Article  Google Scholar 

  9. An interesting toy called the ‘Groove Tube’ was used to work on this problem. Details are in the papers by R. V. Mancuso, A working mechanical model for first and second order phase transitions and the cusp catastrophe, American Journal of Physics, Vol.68, 271, 2000

    Article  Google Scholar 

  10. R V Mancuso and G A Schrieber, An improved apparatus for demonstrating first and second order phase transitions, American Journal of Physics, Vol.73, 366, 2005.

    Article  Google Scholar 

  11. J Sivardiere, A simple mechanical model exhibiting spontaneous symmetry breaking, American Journal of Physics, Vol.51, 1016, 1983.

    Article  Google Scholar 

  12. M Gottlieb and S Chandra, www.feynmanlectures.caltech.edu/info/exercises/roll.withoutslipping.html

  13. S Kar, An instanton approach to quantum tunneling for a particle on a rotating circle, Phys. Letts’., Vol.A 168, 179, 1992

    Article  Google Scholar 

  14. S Kar and A Khare, Classical and quantum mechanics of a particle on a rotating hoop, American Journal of Physics, Vol.68, 1128, 2000.

    Article  Google Scholar 

  15. For a good and easy-going introduction to solitons and insinuions see Chapters 2, 4 and 10 of R Rajaraman, Solitons and Instantons, North Holland (1987).

  16. https://drive.google.com/file/d/1yRkIjniB93Q_GLf5oo-4cuy54oU72LNA/view?usp=sharing

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7. Acknowledgements

The authors thank Bikash Mondal in the Electronic Repair Section and Goutam Mondal in the Mechanical Fabrication Section of CWISS, IIT Kharagpur for their help and support in making the set-up. They also thank Apoorva Sinha and Harmanjot Singh Grewal for their participation in the initial stages of this work. The motivational video attached with this article was recorded and edited for our purposes by Suman Chatterjee. We thank him and Anang Kumar Singh for their help in recording the video.

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Correspondence to Sayan Kar.

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Kushal Lodha is a fifth year undergraduate student in the Integrated M.Sc. (Physics) programme at IIT Kharagpur.

Anushree Roy and Sayan Kar are faculty members in the Department of Physics, IIT Kharagpur.

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Lodha, K., Roy, A. & Kar, S. Physics of a Particle on a Rotating Hoop. Reson 25, 1261–1281 (2020). https://doi.org/10.1007/s12045-020-1044-5

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  • DOI: https://doi.org/10.1007/s12045-020-1044-5

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