インホイール電動二輪車推進のための新型24/30外転子マルチトゥーススイッチトリラクタンスモータ構成
A novel 24/30 external-rotor multi-tooth switched reluctance motor configuration for in-wheel electric two-wheeler propulsion (原題)
S. Bhaktha B, B. Harish, Anandita Tiwari, Jeyeraj Pitchaimani, Gangadharan Kallu Valappil
🤖 gxceed AI 要約
日本語
本論文は、電動二輪車向けに希土類磁石を用いない外転子マルチトゥースSRM(ER-MTSRM)を提案。FEAと駆動サイクル最適化により、平均トルク7.11%増、トルクリップル24.6%減、損失5.78%減を達成。試作検証で誤差4%未満を確認し、PMSM同等のトルク性能を実証。
English
This paper proposes a rare-earth-free external-rotor multi-tooth SRM for electric two-wheelers. Through FEA and drive-cycle optimization, it achieves 7.11% higher average torque, 24.6% lower torque ripple, and 5.78% lower losses. Prototype validation confirms modeling accuracy within 4%, demonstrating PMSM-equivalent torque performance.
Unofficial AI-generated summary based on the public title and abstract. Not an official translation.
📝 gxceed 編集解説 — Why this matters
日本のGX文脈において
日本では二輪車電動化が進む中、希土類磁石依存からの脱却は資源安全保障とサプライチェーン強靭化に寄与。本技術は自動車部品サプライヤーや二輪車メーカーにとって、脱炭素と競争力強化の両立に資する。
In the global GX context
Globally, this work addresses rare-earth supply chain concerns and supports the transition to magnet-free traction motors, aligning with sustainability goals in the EV sector. It offers a viable alternative to PMSM, reducing environmental impact and supply chain risks.
👥 読者別の含意
🔬研究者:Provides a validated design and optimization methodology for magnet-free SRMs, useful for advancing EV motor research.
🏢実務担当者:Offers a concrete motor topology that can reduce rare-earth dependency and improve sustainability credentials for EV manufacturers.
🏛政策担当者:Highlights the potential of magnet-free motor technologies to enhance supply chain resilience and support decarbonization in transport.
📄 Abstract(原文)
The electrification of two-wheelers is accelerating in India, where conventional internal combustion engine scooters remain major contributors to urban emissions. External-rotor (ER) motor configurations are widely preferred in electric two-wheelers due to their compatibility with in-wheel integration; however, limited rim space imposes stringent torque density requirements. Most current ER traction drives employ rare-earth permanent-magnet machines such as brushless DC (BLDC) and permanent-magnet synchronous motors (PMSMs). While permanent magnets contribute to high torque density and efficiency, concerns about supply-chain concentration, cost volatility, and environmental impact have intensified interest in magnet-free traction motor technologies. Switched reluctance motors (SRMs) are promising candidates because they eliminate the need for rare-earth magnets, offer a simple construction, high thermal robustness, inherent fault tolerance, and strong field-weakening capability. However, their typically lower torque density has limited deployment in commercial two-wheelers. To address this gap, this work proposes a novel 24/30 external-rotor multi-tooth SRM (ER-MTSRM) topology tailored explicitly for electric two-wheeler propulsion. The configuration delivers competitive torque performance while fitting within the same dimensional envelope as an existing ER-PMSM while retaining the magnet-free and structurally simple nature of SRMs. The electromagnetic behavior of the proposed machine is evaluated using static finite-element analysis (FEA). Further, the performance parameters of the proposed topology are refined through a driving-cycle-based multi-objective optimization. Maximizing average torque while minimizing electromagnetic losses and torque ripple constitutes the optimization objectives. Compared with the initial design, the optimized topology achieved a 7.11% increase in average torque, a 24.60% reduction in torque ripple, and a 5.78% reduction in weighted loss. The FEA framework employed is validated through experimental flux-linkage measurements on a downsized ER-MTSRM prototype, with an error of less than 4%, confirming the accuracy of the modeling approach. The results show that the 24/30 ER-MTSRM achieves PMSM-equivalent torque performance within in-wheel dimensional constraints.
🔗 Provenance — このレコードを発見したソース
- semanticscholar https://doi.org/10.1177/09544070261474600first seen 2026-08-26 04:58:41 · last seen 2026-09-21 04:54:42
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