We present results of an experimental investigation of a new mechanism for extending the reach of an elastic rod injected into a horizontal cylindrical constraint, prior to the onset of helical buckling. This is accomplished through distributed, vertical vibration of the constraint during injection. A model system is developed that allows us to quantify the critical loads and resulting length scales of the buckling configurations, while providing direct access to the buckling process through digital imaging. In the static case (no vibration), we vary the radial size of the cylindrical constraint and find that our experimental results are in good agreement with existing predictions on the critical injection force and length of injected rod for helical buckling. When vertical vibration is introduced, reach can be extended by up to a factor of four, when compared to the static case. The injection speed (below a critical value that we uncover), as well as the amplitude and frequency of vibration, are studied systematically and found to have an effect on the extent of improvement attained.
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February 2015
Research-Article
Extending the Reach of a Rod Injected Into a Cylinder Through Distributed Vibration
Jay T. Miller,
Jay T. Miller
1
Department of Civil and
Environmental Engineering,
Environmental Engineering,
Massachusetts Institute of Technology
,Cambridge, MA 02139
1Present address: Schlumberger-Doll Research, Cambridge, MA 02139.
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Connor G. Mulcahy,
Connor G. Mulcahy
Department of Mechanical Engineering,
Massachusetts Institute of Technology
,Cambridge, MA 02139
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Jahir Pabon,
Jahir Pabon
Schlumberger-Doll Research
,Cambridge, MA 02139
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Nathan Wicks,
Nathan Wicks
Schlumberger-Doll Research
,Cambridge, MA 02139
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Pedro M. Reis
Pedro M. Reis
2
Department of Mechanical Engineering,
Department of Civil and
Environmental Engineering,
e-mail: preis@mit.edu
Department of Civil and
Environmental Engineering,
Massachusetts Institute of Technology
,Cambridge, MA 02139
e-mail: preis@mit.edu
2Corresponding author.
Search for other works by this author on:
Jay T. Miller
Department of Civil and
Environmental Engineering,
Environmental Engineering,
Massachusetts Institute of Technology
,Cambridge, MA 02139
Connor G. Mulcahy
Department of Mechanical Engineering,
Massachusetts Institute of Technology
,Cambridge, MA 02139
Jahir Pabon
Schlumberger-Doll Research
,Cambridge, MA 02139
Nathan Wicks
Schlumberger-Doll Research
,Cambridge, MA 02139
Pedro M. Reis
Department of Mechanical Engineering,
Department of Civil and
Environmental Engineering,
e-mail: preis@mit.edu
Department of Civil and
Environmental Engineering,
Massachusetts Institute of Technology
,Cambridge, MA 02139
e-mail: preis@mit.edu
1Present address: Schlumberger-Doll Research, Cambridge, MA 02139.
2Corresponding author.
Contributed by the Applied Mechanics of ASME for publication in the JOURNAL OF APPLIED MECHANICS. Manuscript received October 9, 2014; final manuscript received November 6, 2014; accepted manuscript posted December 12, 2014; published online December 12, 2014. Editor: Yonggang Huang.
J. Appl. Mech. Feb 2015, 82(2): 021003 (6 pages)
Published Online: February 1, 2015
Article history
Received:
October 9, 2014
Revision Received:
November 6, 2014
Online:
December 12, 2014
Accepted:
December 12, 2014
Citation
Miller, J. T., Mulcahy, C. G., Pabon, J., Wicks, N., and Reis, P. M. (February 1, 2015). "Extending the Reach of a Rod Injected Into a Cylinder Through Distributed Vibration." ASME. J. Appl. Mech. February 2015; 82(2): 021003. https://doi.org/10.1115/1.4029251
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