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May 8, 2026International Transactions on Electrical Energy Systems0 citationsOpen Access

Asymmetric T‐Shaped Notching Rotor Design for Torque Ripple and Cogging Torque Reduction in Interior Permanent Magnet Motors

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HLH.N. LinPKP. KhunkittiPSP. Seangwong

Key Points

  • The study aims to reduce torque ripple and cogging torque in interior permanent magnet motors using a novel rotor design.
  • Introduced an asymmetric T-shaped notching rotor for torque mitigation in IPMSMs.
  • Employed a multiobjective design framework with sensitivity-based constraints to optimize rotor geometry.
  • Conducted finite element analysis to assess electromagnetic performance under varied conditions.
  • Optimized rotor reduced cogging torque by 52.3% and torque ripple by 10.5%, while maintaining average torque.
  • Demonstrated effective torque ripple mitigation across a broad range of currents and operating speeds.
  • Lowered core and magnet eddy current losses improved efficiency throughout the operating range.

Abstract

Interior permanent magnet synchronous motors (IPMSMs) are regarded as the most promising candidate for electric vehicle (EV) propulsion systems due to their superior power density, efficiency, and robust rotor structure. However, mitigating torque ripple and cogging torque remains a critical challenge for ensuring the smooth operation of such machines. This paper introduces a novel asymmetric T‐shaped notching rotor topology designed to suppress these torque pulsations in a V‐shaped IPMSM used in the Tesla Model 3 platform. A multiobjective design framework utilizing sensitivity‐based constraints is implemented to optimize the notch geometry. Finite element analysis evaluates the electromagnetic performance under both no‐load and loaded conditions. Compared to the baseline design, the optimized asymmetric T‐shaped notching rotor yields a significant reduction of cogging torque by 52.3% and torque ripple by 10.5% while maintaining comparable average torque. The torque ripple mitigation is demonstrated across a broad range of currents and operating speeds. Analysis of the air‐gap harmonics and magnetic field distribution clarifies the underlying cause of these enhancements. Furthermore, the design exhibits lower core and magnet eddy current losses, resulting in improved efficiency across the operating range. The findings demonstrate that the asymmetric T‐shaped notching technique effectively suppresses torque pulsations in commercial EV traction machines without compromising torque magnitude.

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Cite This Study

Lin et al. (2026) studied this question.

synapsesocial.com/papers/69fd7ef7bfa21ec5bbf0747ahttps://doi.org/10.1155/etep/3264311
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Design and Performance Analysis of Inner-Rotor IPM PMSMs for Cogging Torque and Ripple Reduction in EV Applications2026 · 1 citations
  2. 2Design and Optimization of Asymmetrical Rotor Structure for Permanent Magnet Synchronous Motors2026
  3. 3Torque Capability Enhancement of Interior Permanent Magnet Motors Using Filleting and Notching Stator2025
  4. 4Enhanced Interior PMSM Design for Electric Vehicles Using Ship-Shaped Notching and Advanced Optimization Algorithms2025 · 12 citations
  5. 5Design of Rotor Pole Arrangement for Torque Ripple Reduction in Consequent Pole Permanent Magnet Synchronous Motors2026 · 1 citations