Continuous Hairpin Winding Technology for Electric Machines Enabling Net Zero Transportation: A Comprehensive Review

IF 4.8 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Hailin Huang;Tianjie Zou;Mauro Di Nardo;Amedeo Vannini;Anh Thanh Huynh;Michele Degano;David Gerada;Tao Yang;Chris Gerada
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引用次数: 0

Abstract

Featured by low power losses and strong heat dissipation capability, hairpin winding has been widely accepted as a key enabler of boosting performance for traction/propulsion electrical machines in automotive and aerospace sectors. Continuous hairpin winding (CHW), distinguished by its further improvement brought to machines’ key performance indicators, being power density, efficiency, and reliability, is emerging as a more promising winding solution. This paper will provide a critical technology review on CHW, with focus on highlighting its different features compared with those of other typical winding types, manufacturing/assembly process, layout design rules, as well as current and future development trends. Based on illustration of the unique winding process, the so-called “radial shift” feature that inherently exists in CHW will be introduced. The key elements in winding layout development, including transposition, terminal and jumper connections, parallel branch number, will be summarised for CHW. Moreover, new technology bricks and research ideas that strive to tackle manufacturing challenges, enhance design flexibility, as well as improve overall performance have been highlighted. Finally, the paper concludes by proposing future research directions, with the vision of increasing its Technology Readiness Level (TRL) for future net-zero transportation.
实现净零传输的电机连续发夹绕组技术:综述
发夹绕组具有低功耗和强散热能力的特点,已被广泛接受为提高汽车和航空航天领域牵引/推进电机性能的关键使能器。连续发夹绕组(CHW)的特点是进一步提高了机器的关键性能指标,如功率密度、效率和可靠性,是一种更有前途的绕组解决方案。本文将对CHW的关键技术进行综述,重点介绍CHW与其他典型绕组类型的不同特点,制造/装配工艺,布局设计规则,以及当前和未来的发展趋势。通过对独特缠绕工艺的说明,介绍了CHW固有的“径向移位”特性。在绕组布局发展的关键要素,包括换位,终端和跳线连接,并联支路数,将总结CHW。此外,致力于解决制造挑战、增强设计灵活性以及提高整体性能的新技术和研究理念也得到了强调。最后,本文提出了未来的研究方向,以期提高其技术准备水平(TRL),以实现未来的净零交通。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
9.60
自引率
0.00%
发文量
25
审稿时长
10 weeks
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