Short-Circuit Current Reduction in Dual Three-Phase Permanent-Magnet Machine by Asymmetric Pitch for High-Reliability Applications

IF 5.4 2区 工程技术 Q2 ENERGY & FUELS IEEE Transactions on Energy Conversion Pub Date : 2025-03-18 DOI:10.1109/TEC.2025.3552422
Yuhua Sun;Wenxiang Zhao;Jinghua Ji;Nicola Bianchi;Yunhan Zhou
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Abstract

This paper proposes a short-circuit current (SCC) reduction method for dual three-phase (DTP) permanent-magnet machines by asymmetric pitch technique. The conventional DTP winding configuration with symmetric pitch is used as a benchmark. The above two windings are named as asymmetric and symmetric configurations, respectively. Firstly, the asymmetric configuration with physical isolation is introduced and distinguished based on the spatial distribution. Secondly, the stator magnetomotive forces generated by different configurations are analyzed, and the effects of asymmetric configuration on harmonic order and content are studied with emphasis. Afterwards, the SCC and braking torque of different configurations are analyzed and compared under fault condition. The asymmetric configuration has great significance to reduce the SCC and braking torque. Moreover, it exhibits comparable torque ripple compared to the symmetric counterpart, although with a reduction slightly in average torque. Finally, the 48-slot/8-pole DTP permanent-magnet machines with different configurations are manufactured. The experiments are conducted and compared to validate theoretical analysis and reliability improvement design.
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采用非对称螺距的双三相永磁电机在高可靠性应用中的短路电流减小
提出了一种利用非对称节距技术减小双三相永磁电机短路电流的方法。采用对称节距的传统DTP绕组结构作为基准。上述两种绕组分别称为非对称和对称配置。首先,引入了具有物理隔离的非对称构型,并根据空间分布进行了区分。其次,分析了不同构型的定子磁动势,重点研究了不对称构型对谐波阶数和谐波含量的影响。然后,对故障条件下不同配置的SCC和制动力矩进行了分析比较。这种非对称结构对减小制动扭矩和SCC具有重要意义。此外,与对称对应物相比,它表现出可比的扭矩波动,尽管平均扭矩略有降低。最后,制造出不同配置的48槽/8极DTP永磁机。通过实验对比验证了理论分析和可靠性改进设计的正确性。
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来源期刊
IEEE Transactions on Energy Conversion
IEEE Transactions on Energy Conversion 工程技术-工程:电子与电气
CiteScore
11.10
自引率
10.20%
发文量
230
审稿时长
4.2 months
期刊介绍: The IEEE Transactions on Energy Conversion includes in its venue the research, development, design, application, construction, installation, operation, analysis and control of electric power generating and energy storage equipment (along with conventional, cogeneration, nuclear, distributed or renewable sources, central station and grid connection). The scope also includes electromechanical energy conversion, electric machinery, devices, systems and facilities for the safe, reliable, and economic generation and utilization of electrical energy for general industrial, commercial, public, and domestic consumption of electrical energy.
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