The efficiency of electric motors is highly dependent on their operating temperature, with lower temperatures contributing to enhanced performance, reliability, and extended service life. This study presents a comprehensive review of state-of-the-art cooling technologies and evaluates their impact on the thermal behavior of a commercial motor–generator system in high-demand applications. A baseline model of a permanent magnet synchronous motor (PMSM) was developed using MotorCAD 2023® software, which was supported by reverse engineering techniques to accurately replicate the motor’s physical and thermal characteristics. Subsequently, multiple cooling strategies were simulated under consistent operating conditions to assess their effectiveness. These strategies include conventional axial water jackets as well as advanced oil-based methods such as shaft cooling and direct oil spray to the windings. The integration of these systems in hybrid configurations was also explored to maximize thermal efficiency. Simulation results reveal that hybrid cooling significantly reduces the temperature of critical components such as stator windings and permanent magnets. This reduction in thermal stress improves current efficiency, power output, and torque capacity, enabling reliable motor operation across a broader range of speeds and under sustained high-load conditions. The findings highlight the effectiveness of hybrid cooling systems in optimizing both thermal management and operational performance of electric machines.
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Henrry Gabriel Usca-Gomez
David Sebastian Puma-Benavides
Danilo Zambrano
World Electric Vehicle Journal
Tecnológico de Monterrey
Universidad de las Fuerzas Armadas ESPE
Instituto Tecnológico y de Estudios Superiores de Occidente
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Usca-Gomez et al. (Mon,) studied this question.
www.synapsesocial.com/papers/689a0f93e6551bb0af8d104d — DOI: https://doi.org/10.3390/wevj16080437