The well-established methodology for slider-crank function generation states that five precision points can be achieved without structural error. The resulting designs, however, do not necessarily satisfy all of the kinematic requirements for designing a slider-crank linkage used in common machine applications such as driving the ram of a mechanical press. First, linkage solutions to the five precision point synthesis problem may need to change circuits to reach the precision points. Second, there is no guarantee that the input crank is fully rotatable. This paper presents a modification to the function generation synthesis methodology that reveals a continuum of defect-free, slider-crank solutions for four precision points. Additionally, the methodology allows the specification of velocity or acceleration at the precision points. Although smaller accelerations at a point of zero slide velocity are associated with longer dwell, a point having zero velocity and acceleration is shown not to be possible. Examples are included to illustrate this kinematic synthesis methodology.
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August 2015
Research-Article
A Function Generation Synthesis Methodology for All Defect-Free Slider-Crank Solutions for Four Precision Points
Ali Almandeel,
Ali Almandeel
Department of Mechanical
and Aerospace Engineering,
e-mail: mandeel@gmail.com
and Aerospace Engineering,
University of Dayton
,Dayton, OH 45469
e-mail: mandeel@gmail.com
Search for other works by this author on:
Andrew P. Murray,
Andrew P. Murray
Department of Mechanical
and Aerospace Engineering,
and Aerospace Engineering,
University of Dayton
,Dayton, OH 45469
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David H. Myszka,
David H. Myszka
Department of Mechanical
and Aerospace Engineering,
and Aerospace Engineering,
University of Dayton
,Dayton, OH 45469
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Herbert E. Stumph, III
Herbert E. Stumph, III
Stress Engineering Services, Inc.
,7030 Stress Engineering Way
,Mason, OH 45040
Search for other works by this author on:
Ali Almandeel
Department of Mechanical
and Aerospace Engineering,
e-mail: mandeel@gmail.com
and Aerospace Engineering,
University of Dayton
,Dayton, OH 45469
e-mail: mandeel@gmail.com
Andrew P. Murray
Department of Mechanical
and Aerospace Engineering,
and Aerospace Engineering,
University of Dayton
,Dayton, OH 45469
David H. Myszka
Department of Mechanical
and Aerospace Engineering,
and Aerospace Engineering,
University of Dayton
,Dayton, OH 45469
Herbert E. Stumph, III
Stress Engineering Services, Inc.
,7030 Stress Engineering Way
,Mason, OH 45040
Manuscript received December 30, 2013; final manuscript received March 19, 2015; published online June 10, 2015. Assoc. Editor: Qiaode Jeffrey Ge.
J. Mechanisms Robotics. Aug 2015, 7(3): 031020 (10 pages)
Published Online: August 1, 2015
Article history
Received:
December 30, 2013
Revision Received:
March 19, 2015
Online:
June 10, 2015
Citation
Almandeel, A., Murray, A. P., Myszka, D. H., and Stumph, H. E., III (August 1, 2015). "A Function Generation Synthesis Methodology for All Defect-Free Slider-Crank Solutions for Four Precision Points." ASME. J. Mechanisms Robotics. August 2015; 7(3): 031020. https://doi.org/10.1115/1.4030182
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