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METHODS article

Front. Mech. Eng.
Sec. Solid and Structural Mechanics
Volume 9 - 2023 | doi: 10.3389/fmech.2023.1228696

Evaluating lightweight Gear Transmission Error: A novel nonlinear Finite Element approach using direct constraint contact algorithm

 Wael Masmoudi1* Jean-Luc Wojtowicki2  Giuseppe Petrone1 Francesco Franco1  Sergio De Rosa1
  • 1University of Naples Federico II, Italy
  • 2VIBRATEC, France

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With the growing demand for lightweight gear transmission systems, composite materials have emerged as a promising solution due to their high specific properties. However, the complexity of designing gear pairs with composite materials necessitates the development of reliable numerical procedures. This study presents a robust numerical approach using a flexible multibody method through the MSC MARC solver to accurately estimate static transmission error (STE) in lightweight gears, considering the nonlinear behavior caused by gear contact. The Finite Element (FE) model uses the Multi-Point Constraint equations (MPCs) to ensure the non-penetration condition considering a node-to-surface contact detection.The proposed method is compared against commercial software for standard gear pair cases, demonstrating its effectiveness in addressing complex structures based on composite materials. The numerical procedure is further applied to analyze hybrid metal-composite gear pairs and compared to a holed one. The results provide insights into the time evolution and harmonic components of STE, highlighting the advantages of hybrid gears in terms of reduced vibrations and noise for the same mass reduction compared to holed gears. Additionally, ply arrangements resulting in quasi-isotropic properties of the composite disc are compared to unidirectional laminates to highlight the fiber orientation effect on the STE results.

Keywords: Gear transmission error, Flexible multibody modeling, Lightweight gears, Finite Element Analysis, Contact formulation

Received: 25 May 2023; Accepted: 18 Sep 2023.

Copyright: © 2023 Masmoudi, Wojtowicki, Petrone, Franco and De Rosa. This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.

* Correspondence: Mr. Wael Masmoudi, University of Naples Federico II, Naples, Italy