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April 10, 2026World Electric Vehicle Journal0 citationsOpen Access

Skew Angle Optimization for Cogging Torque Reduction in 12-Pole/15-Slot Axial Flux PMSMs

IPIce PoonpholPPPadej Pao-la-or

Key Points

  • The aim is to optimize skew angles in axial flux motors to reduce cogging torque while maintaining electromagnetic constraints.
  • Developed a three-dimensional finite element model incorporating nonlinear magnetic properties.
  • Utilized a genetic algorithm to optimize skew angles in the rotor design.
  • Focus on a 12/15 non-integer pole/slot arrangement.
  • Achieved a reduction of peak-to-peak cogging torque to less than 50%.
  • Improved harmonic distribution compared to traditional integer arrangements.
  • Extended operating range suitable for electric vehicle performance.

Abstract

Axial Flux Permanent Magnet Synchronous Motors (AFPMSMs) are gaining increasing attention for their application in electric vehicle (EV) drive systems. Their high torque density and compact axial geometry make them attractive for high-performance EV drive systems. However, cogging torque remains a major challenge, degrading low-speed drivability, noise performance, and control stability. This article proposes a magnet skew on rotor modulation structure using a genetic algorithm (GA) to reduce cogging torque in AFPMSMs utilizing a 12/15 non-integer pole/slot arrangement. The objective of optimization is to simultaneously reduce cogging torque under identical electromagnetic constraints. A complete three-dimensional finite element model (3D-FEM) incorporating nonlinear magnetic material properties has been developed to evaluate the electromagnetic field distribution and torque components. The results indicate that a 12/15 non-integer pole/slot arrangement improves harmonic distribution and extends the operating range with lower cogging torque compared to integer pole/slot designs. Combined with GA-optimized skew angles, this reduces peak-to-peak cogging torque to less than 50%. This design is ideally suited for the traction requirements of electric vehicles, including premium electric vehicles where smooth operation at low speeds is critical.

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Cite This Study

Poonphol et al. (2026) studied this question.

synapsesocial.com/papers/69d894ad6c1944d70ce05984https://doi.org/10.3390/wevj17040192
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