EN
A DYNAMIC MODEL FOR FLYWHEEL-BASED PIVOTING IN RECONFIGURABLE CUBIC MODULES
Abstract
This paper introduces a dynamic model of a novel flywheel that provides a pivoting motion for a cubic module in reconfigurable systems. The challenges associated with pivoting motion for lattice-type self-reconfigurable modular robots are investigated, particularly the momentum-driven ones, where the existing models use two separated systems for actuation and braking. The proposed system allows a combined actuation and braking system, to manage the pivoting action. The mathematical model of the dynamical flywheel is developed according to Newton’s Law. The flywheel has a variable diameter depending on the angular speed, where the sudden brake is applied by the collision between the flywheel end and the braking notch. The angular momentum transfer from the flywheel to the module body provides pivoting torque, which is the fundamental principle in momentum-driven systems. The dynamic model is verified by experimental studies. The experimental findings indicate that the success rates of the proposed system are 90% and 80% for traverse and horizontal traverse pivoting motion respectively. The average time duration for traverse and horizontal traverse pivoting motion are 0.906 and 0.763 seconds respectively. Based on the findings, the study indicates that the developed flywheel is a potential candidate for a pivoting actuator in the self-reconfigurable modular robotic field.
Keywords
References
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Details
Primary Language
English
Subjects
Machine Theory and Dynamics
Journal Section
Research Article
Authors
Publication Date
September 1, 2025
Submission Date
March 18, 2025
Acceptance Date
June 26, 2025
Published in Issue
Year 2025 Volume: 13 Number: 3
APA
Dokuyucu, H. İ., & Gürsel Özmen, N. (2025). A DYNAMIC MODEL FOR FLYWHEEL-BASED PIVOTING IN RECONFIGURABLE CUBIC MODULES. Konya Journal of Engineering Sciences, 13(3), 837-855. https://doi.org/10.36306/konjes.1660279
AMA
1.Dokuyucu Hİ, Gürsel Özmen N. A DYNAMIC MODEL FOR FLYWHEEL-BASED PIVOTING IN RECONFIGURABLE CUBIC MODULES. KONJES. 2025;13(3):837-855. doi:10.36306/konjes.1660279
Chicago
Dokuyucu, Halil İbrahim, and Nurhan Gürsel Özmen. 2025. “A DYNAMIC MODEL FOR FLYWHEEL-BASED PIVOTING IN RECONFIGURABLE CUBIC MODULES”. Konya Journal of Engineering Sciences 13 (3): 837-55. https://doi.org/10.36306/konjes.1660279.
EndNote
Dokuyucu Hİ, Gürsel Özmen N (September 1, 2025) A DYNAMIC MODEL FOR FLYWHEEL-BASED PIVOTING IN RECONFIGURABLE CUBIC MODULES. Konya Journal of Engineering Sciences 13 3 837–855.
IEEE
[1]H. İ. Dokuyucu and N. Gürsel Özmen, “A DYNAMIC MODEL FOR FLYWHEEL-BASED PIVOTING IN RECONFIGURABLE CUBIC MODULES”, KONJES, vol. 13, no. 3, pp. 837–855, Sept. 2025, doi: 10.36306/konjes.1660279.
ISNAD
Dokuyucu, Halil İbrahim - Gürsel Özmen, Nurhan. “A DYNAMIC MODEL FOR FLYWHEEL-BASED PIVOTING IN RECONFIGURABLE CUBIC MODULES”. Konya Journal of Engineering Sciences 13/3 (September 1, 2025): 837-855. https://doi.org/10.36306/konjes.1660279.
JAMA
1.Dokuyucu Hİ, Gürsel Özmen N. A DYNAMIC MODEL FOR FLYWHEEL-BASED PIVOTING IN RECONFIGURABLE CUBIC MODULES. KONJES. 2025;13:837–855.
MLA
Dokuyucu, Halil İbrahim, and Nurhan Gürsel Özmen. “A DYNAMIC MODEL FOR FLYWHEEL-BASED PIVOTING IN RECONFIGURABLE CUBIC MODULES”. Konya Journal of Engineering Sciences, vol. 13, no. 3, Sept. 2025, pp. 837-55, doi:10.36306/konjes.1660279.
Vancouver
1.Halil İbrahim Dokuyucu, Nurhan Gürsel Özmen. A DYNAMIC MODEL FOR FLYWHEEL-BASED PIVOTING IN RECONFIGURABLE CUBIC MODULES. KONJES. 2025 Sep. 1;13(3):837-55. doi:10.36306/konjes.1660279