We explore the effect of precisely defined geometric imperfections on the buckling load of spherical shells under external pressure loading, using finite-element analysis that was previously validated through precision experiments. Our numerical simulations focus on the limit of large amplitude defects and reveal a lower bound that depends solely on the shell radius to thickness ratio and the angular width of the defect. It is shown that, in the large amplitude limit, the buckling load depends on an single geometric parameter, even for shells of moderate radius to thickness ratio. Moreover, numerical results on the knockdown factor are fitted to an empirical, albeit general, functional form that may be used as a robust design guideline for the critical buckling conditions of pressurized spherical shells.
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March 2017
Technical Briefs
Technical Brief: Knockdown Factor for the Buckling of Spherical Shells Containing Large-Amplitude Geometric Defects
Francisco López Jiménez,
Francisco López Jiménez
Department of Civil and Environmental Engineering,
Massachusetts Institute of Technology,
Cambridge, MA 02139
Massachusetts Institute of Technology,
Cambridge, MA 02139
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Joel Marthelot,
Joel Marthelot
Department of Civil and Environmental Engineering,
Massachusetts Institute of Technology,
Cambridge, MA 02139
Massachusetts Institute of Technology,
Cambridge, MA 02139
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Anna Lee,
Anna Lee
Department of Mechanical Engineering,
Massachusetts Institute of Technology,
Cambridge, MA 02139
Massachusetts Institute of Technology,
Cambridge, MA 02139
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John W. Hutchinson,
John W. Hutchinson
School of Engineering and Applied Sciences,
Harvard University,
Cambridge, MA 02138
Harvard University,
Cambridge, MA 02138
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Pedro M. Reis
Pedro M. Reis
Department of Civil and Environmental Engineering,
Massachusetts Institute of Technology,
Cambridge, MA 02139;
Massachusetts Institute of Technology,
Cambridge, MA 02139;
Department of Mechanical Engineering,
Massachusetts Institute of Technology,
Cambridge, MA 02139
Massachusetts Institute of Technology,
Cambridge, MA 02139
Search for other works by this author on:
Francisco López Jiménez
Department of Civil and Environmental Engineering,
Massachusetts Institute of Technology,
Cambridge, MA 02139
Massachusetts Institute of Technology,
Cambridge, MA 02139
Joel Marthelot
Department of Civil and Environmental Engineering,
Massachusetts Institute of Technology,
Cambridge, MA 02139
Massachusetts Institute of Technology,
Cambridge, MA 02139
Anna Lee
Department of Mechanical Engineering,
Massachusetts Institute of Technology,
Cambridge, MA 02139
Massachusetts Institute of Technology,
Cambridge, MA 02139
John W. Hutchinson
School of Engineering and Applied Sciences,
Harvard University,
Cambridge, MA 02138
Harvard University,
Cambridge, MA 02138
Pedro M. Reis
Department of Civil and Environmental Engineering,
Massachusetts Institute of Technology,
Cambridge, MA 02139;
Massachusetts Institute of Technology,
Cambridge, MA 02139;
Department of Mechanical Engineering,
Massachusetts Institute of Technology,
Cambridge, MA 02139
Massachusetts Institute of Technology,
Cambridge, MA 02139
Contributed by the Applied Mechanics Division of ASME for publication in the JOURNAL OF APPLIED MECHANICS. Manuscript received November 28, 2016; final manuscript received December 26, 2016; published online January 24, 2017. Editor: Yonggang Huang.
J. Appl. Mech. Mar 2017, 84(3): 034501 (4 pages)
Published Online: January 24, 2017
Article history
Received:
November 28, 2016
Revised:
December 26, 2016
Citation
Jiménez, F. L., Marthelot, J., Lee, A., Hutchinson, J. W., and Reis, P. M. (January 24, 2017). "Technical Brief: Knockdown Factor for the Buckling of Spherical Shells Containing Large-Amplitude Geometric Defects." ASME. J. Appl. Mech. March 2017; 84(3): 034501. https://doi.org/10.1115/1.4035665
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