In this paper, an original approach is proposed to calculate the static load distribution and the axial stiffness of a planetary roller screw (PRS) mechanism. Assuming that the external loading is shared equally over an arbitrary number of rollers, only a sector of the system is represented to save on computing time. The approach consists in using a structure of bars, beams, and nonlinear springs to model the different components of the mechanism and their interactions. This nonlinear model describes the details of the mechanism and captures the shape of the nut as well as the bending deformation of the roller. All materials are assumed to operate in the elastic range. The load distribution and the axial stiffness are determined in three specific configurations of the system for both compressive and tensile loads. Further, the influence of the shape of the nut is studied in the case of the inverted PRS. The results obtained from this approach are also compared to those computed with a three-dimensional finite-element (3D FE) model. Finally, since the calculations appear to be very accurate, a parametric study is conducted to show the impact of the bending of the roller on the load distribution.
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January 2016
Research-Article
Static Load Distribution and Axial Stiffness in a Planetary Roller Screw Mechanism
Folly Abevi,
Folly Abevi
Research and Product Development Engineer,
SKF Transrol,
148 Rue Felix Esclangon,
Chambéry 73000, France
e-mail: folly.abevi@skf.com
SKF Transrol,
148 Rue Felix Esclangon,
Chambéry 73000, France
e-mail: folly.abevi@skf.com
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Alain Daidie,
Alain Daidie
Institut Clément ADER,
INSA (Institut National des Sciences Appliquées),
Université de Toulouse,
3 Rue Caroline Aigle,
Toulouse 31400, France
e-mail: alain.daidie@insa-toulouse.fr
INSA (Institut National des Sciences Appliquées),
Université de Toulouse,
3 Rue Caroline Aigle,
Toulouse 31400, France
e-mail: alain.daidie@insa-toulouse.fr
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Michel Chaussumier,
Michel Chaussumier
Institut Clément ADER,
INSA (Institut National des Sciences Appliquées),
Université de Toulouse,
3 Rue Caroline Aigle,
Toulouse 31400, France
e-mail: michel.chaussumier@insa-toulouse.fr
INSA (Institut National des Sciences Appliquées),
Université de Toulouse,
3 Rue Caroline Aigle,
Toulouse 31400, France
e-mail: michel.chaussumier@insa-toulouse.fr
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Marc Sartor
Marc Sartor
Institut Clément ADER,
INSA (Institut National des Sciences Appliquées),
Université de Toulouse,
3 Rue Caroline Aigle,
Toulouse 31400, France
e-mail: marc.sartor@insa-toulouse.fr
INSA (Institut National des Sciences Appliquées),
Université de Toulouse,
3 Rue Caroline Aigle,
Toulouse 31400, France
e-mail: marc.sartor@insa-toulouse.fr
Search for other works by this author on:
Folly Abevi
Research and Product Development Engineer,
SKF Transrol,
148 Rue Felix Esclangon,
Chambéry 73000, France
e-mail: folly.abevi@skf.com
SKF Transrol,
148 Rue Felix Esclangon,
Chambéry 73000, France
e-mail: folly.abevi@skf.com
Alain Daidie
Institut Clément ADER,
INSA (Institut National des Sciences Appliquées),
Université de Toulouse,
3 Rue Caroline Aigle,
Toulouse 31400, France
e-mail: alain.daidie@insa-toulouse.fr
INSA (Institut National des Sciences Appliquées),
Université de Toulouse,
3 Rue Caroline Aigle,
Toulouse 31400, France
e-mail: alain.daidie@insa-toulouse.fr
Michel Chaussumier
Institut Clément ADER,
INSA (Institut National des Sciences Appliquées),
Université de Toulouse,
3 Rue Caroline Aigle,
Toulouse 31400, France
e-mail: michel.chaussumier@insa-toulouse.fr
INSA (Institut National des Sciences Appliquées),
Université de Toulouse,
3 Rue Caroline Aigle,
Toulouse 31400, France
e-mail: michel.chaussumier@insa-toulouse.fr
Marc Sartor
Institut Clément ADER,
INSA (Institut National des Sciences Appliquées),
Université de Toulouse,
3 Rue Caroline Aigle,
Toulouse 31400, France
e-mail: marc.sartor@insa-toulouse.fr
INSA (Institut National des Sciences Appliquées),
Université de Toulouse,
3 Rue Caroline Aigle,
Toulouse 31400, France
e-mail: marc.sartor@insa-toulouse.fr
Contributed by the Mechanisms and Robotics Committee of ASME for publication in the JOURNAL OF MECHANICAL DESIGN. Manuscript received May 11, 2015; final manuscript received September 27, 2015; published online November 16, 2015. Assoc. Editor: Ettore Pennestri.
J. Mech. Des. Jan 2016, 138(1): 012301 (11 pages)
Published Online: November 16, 2015
Article history
Received:
May 11, 2015
Revised:
September 27, 2015
Citation
Abevi, F., Daidie, A., Chaussumier, M., and Sartor, M. (November 16, 2015). "Static Load Distribution and Axial Stiffness in a Planetary Roller Screw Mechanism." ASME. J. Mech. Des. January 2016; 138(1): 012301. https://doi.org/10.1115/1.4031859
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