Solving procedure for the Kelvin–Kirchhoff equations in case of non-stationary rotations of slim disc
Author:
Publisher
Springer Science and Business Media LLC
Subject
Mechanical Engineering
Link
https://link.springer.com/content/pdf/10.1007/s00419-021-01890-9.pdf
Reference27 articles.
1. Kirchhoff G.R.: Vorlesungen ueber Mathematische Physik, Mechanik. Lecture 19. Leipzig: Teubner (1877).
2. Ershkov, S.V., Christianto, V., Shamin, R.V., Giniyatullin, A.R.: About analytical ansatz to the solving procedure for Kelvin-Kirchhoff equations. Eur. J. Mech. B/Fluids 79, 87–91 (2020)
3. Mathai, V., Zhu, X., Sun, C., Lohse, D.: Flutter to tumble transition of buoyant spheres triggered by rotational inertia changes. Nat. Commun. 9(1), 1–7 (2018)
4. Pan, J.-H., Zhang, N.-M., Ni, M.-J.: Instability and transition of a vertical ascension or fall of a free sphere affected by a vertical magnetic field. J Fluid Mech. 859, 33–48 (2019)
5. Ern, P., Risso, F., Fabre, D., Magnaudet, J.: Wake-induced oscillatory paths of bodies freely rising or falling in fluids. Annu. Rev. Fluid Mech. 44, 97–121 (2012)
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1. Correction to: Solving procedure for the Kelvin–Kirchhoff equations in case of non-stationary rotations of slim disc;Archive of Applied Mechanics;2021-03-13
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