A coupled electromagnetic-thermomechanical approach for the modeling of electric motors
N Hanappier (LMS), E Charkaluk (LMS, X-DEP-MECA), N Triantafyllidis, (LMS, X-DEP-MECA)

TL;DR
This paper introduces a comprehensive multiphysics modeling framework for electric motors that couples electromagnetic, thermal, and mechanical effects based on continuum mechanics and thermodynamics principles.
Contribution
It develops a general coupled model for electric motors, integrating electromagnetic, thermal, and mechanical fields, with analytical application to an idealized asynchronous motor.
Findings
Electromagnetic effects significantly influence stress and body forces in motors.
The coupled model predicts current, magnetic, stress, and temperature fields as functions of operational parameters.
Comparison shows electromagnetic forces can surpass purely mechanical forces in certain conditions.
Abstract
Future developments of lighter, more compact and powerful motors-driven by environmental and sustainability considerations in the transportation industry-involve higher stresses, currents and electromagnetic fields. Strong couplings between mechanical, thermal and electromagnetic effects will consequently arise and a consistent multiphysics modeling approach is required for the motors' design. Typical simulations-the bulk of which are presented in the electrical engineering literature-involve a stepwise process, where the resolution of Maxwell's equations provides the Lorentz and magnetic forces which are subsequently used as the external body forces for the resolution of Newton's equations of motion. The work presented here proposes a multiphysics setting for the boundary value problem of electric motors. Using the direct approach of continuum mechanics, a general framework that…
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