This paper provides an efficient method of analysis for a fixed-guided compliant beam with an inflection point, subjected to beam end load or displacement boundary conditions, or a combination thereof. To enable this, such a beam is modeled as a pair of well-established pseudo-rigid-body models (PRBMs) for fixed-free compliant beam segments. The analysis procedure relies on the properties of inflection in developing the necessary set of parametric, static equilibrium and compatibility equations for solution. The paper further discusses the multiplicity of possible solutions, including displacement configurations, for any two specified beam end displacement boundary conditions, depending on the locations and types of the effecting loads on the beam to meet these boundary conditions. A unique solution may exist when a third beam end displacement boundary condition is specified; however, this selection is not unconditional. A concept of characteristic deflection domain is proposed to assist with the selection of the third boundary condition to yield a realistic solution. The analysis method is also used to synthesize a simple, fully compliant mechanism utilizing the fixed-guided compliant segments.
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August 2015
Research-Article
Analysis of a Fixed-Guided Compliant Beam With an Inflection Point Using the Pseudo-Rigid-Body Model Concept
Ashok Midha,
Ashok Midha
1
Professor of Mechanical Engineering,
Department of Mechanical
and Aerospace Engineering,
e-mail: midha@mst.edu
Department of Mechanical
and Aerospace Engineering,
Missouri University of Science and Technology
,Rolla, MO 65409-0050
e-mail: midha@mst.edu
1Corresponding author.
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Sushrut G. Bapat,
Sushrut G. Bapat
Department of Mechanical
and Aerospace Engineering,
e-mail: sgb8cc@mst.edu
and Aerospace Engineering,
Missouri University of Science and Technology
,Rolla, MO 65409-0050
e-mail: sgb8cc@mst.edu
Search for other works by this author on:
Adarsh Mavanthoor,
Adarsh Mavanthoor
Department of Mechanical
and Aerospace Engineering,
e-mail: ad.mavanthoor@yahoo.com
and Aerospace Engineering,
Missouri University of Science and Technology
,Rolla, MO 65409-0050
e-mail: ad.mavanthoor@yahoo.com
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Vivekananda Chinta
Vivekananda Chinta
Department of Mechanical
and Aerospace Engineering,
e-mail: vc6gc@mst.edu
and Aerospace Engineering,
Missouri University of Science and Technology
,Rolla, MO 65409-0050
e-mail: vc6gc@mst.edu
Search for other works by this author on:
Ashok Midha
Professor of Mechanical Engineering,
Department of Mechanical
and Aerospace Engineering,
e-mail: midha@mst.edu
Department of Mechanical
and Aerospace Engineering,
Missouri University of Science and Technology
,Rolla, MO 65409-0050
e-mail: midha@mst.edu
Sushrut G. Bapat
Department of Mechanical
and Aerospace Engineering,
e-mail: sgb8cc@mst.edu
and Aerospace Engineering,
Missouri University of Science and Technology
,Rolla, MO 65409-0050
e-mail: sgb8cc@mst.edu
Adarsh Mavanthoor
Department of Mechanical
and Aerospace Engineering,
e-mail: ad.mavanthoor@yahoo.com
and Aerospace Engineering,
Missouri University of Science and Technology
,Rolla, MO 65409-0050
e-mail: ad.mavanthoor@yahoo.com
Vivekananda Chinta
Department of Mechanical
and Aerospace Engineering,
e-mail: vc6gc@mst.edu
and Aerospace Engineering,
Missouri University of Science and Technology
,Rolla, MO 65409-0050
e-mail: vc6gc@mst.edu
1Corresponding author.
Contributed by the Mechanisms and Robotics Committee of ASME for publication in the JOURNAL OF MECHANISMS AND ROBOTICS. Manuscript received August 30, 2013; final manuscript received July 21, 2014; published online December 4, 2014. Assoc. Editor: Anupam Saxena.
J. Mechanisms Robotics. Aug 2015, 7(3): 031007 (10 pages)
Published Online: August 1, 2015
Article history
Received:
August 30, 2013
Revision Received:
July 21, 2014
Online:
December 4, 2014
Citation
Midha, A., Bapat, S. G., Mavanthoor, A., and Chinta, V. (August 1, 2015). "Analysis of a Fixed-Guided Compliant Beam With an Inflection Point Using the Pseudo-Rigid-Body Model Concept." ASME. J. Mechanisms Robotics. August 2015; 7(3): 031007. https://doi.org/10.1115/1.4028131
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