电动汽车用永磁电机n层扁线绕组设计

IF 8.3 1区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Wentao Zhang;Zhongze Wu;Wei Hua
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引用次数: 0

摘要

在传统的$2{k}$ -层(${k} =1$, 2 $, 3 $, \ldots $)扁线绕组中,每相匝数被限制为偶数。这使得整车与电机之间的性能配对变得困难,包括直流母线电压和转矩-转速曲线。本文分析了电动汽车用永磁电机n层(${n} =1$, 2 $, 3 $, \ldots $)扁线绕组的一般设计方法,包括基本连接单元、初等支路和并联支路的设计。所提出的设计方法除了可以设计为偶数层绕组,即${n} = 2{k}$外,也可以将绕组的层数设计为奇数,即${n} = 2{k}-1$,这样可以降低所需的转矩-转速曲线与直流母线电压之间的配对难度。此外,与现有的均匀层设计方法相比,所提出的扁线绕组设计方法可以通过使用较少的扁线引脚类型来降低制造成本。所提出的设计方法可以同时支持全节距绕组和短节距绕组的设计。通过对全节距绕组和短节距绕组的五层、六层、七层和八层绕组机进行有限元分析,验证了所提出的设计方法。构建了基于n层绕组布局的6层和7层全间距绕组永磁电机样机,并对其进行了测试,以验证所提出的扁线绕组设计方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design of n -Layer Flat Wire Winding in Permanent Magnet Machine for Electric Vehicles
In the traditional $2{k}$ -layer ( ${k} =1$ , 2, $3, \ldots $ ) flat wire winding, the number of turns per phase is limited to be even number. It makes the performance pairing between the vehicle and its electric machines difficult, including the dc bus voltage and the torque-speed curve. In this article, the general design method of n-layer ( ${n} =1$ , 2, $3, \ldots $ ) flat wire winding is analyzed for permanent magnet (PM) machines applied in electric vehicles (EVs), including the design of basic connection unit, the elementary branch, and the parallel branch. Apart from the design of even-layer winding, i.e., ${n} = 2{k}$ , the number of winding layers can also be designed as an odd number, i.e., ${n} = 2{k}-1$ , in the proposed design method, which can lower the pairing difficulty between the required torque-speed curve and the dc bus voltage. In addition, compared with the existing even layer design method, the proposed flat wire winding design method can reduce the manufacturing cost by using less flat wire pin types. The proposed design method can support the design of both full pitch winding and short pitch winding. The proposed design method is verified by a finite element (FE) analysis by comparatively analyzing five-, six-, seven-, and eight-layer winding machines having both full and short pitch windings. Both six- and seven-layer full pitch winding PM machine prototypes, which are designed based on the n-layer winding layout, are built and tested to validate the proposed flat wire winding design method.
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来源期刊
IEEE Transactions on Transportation Electrification
IEEE Transactions on Transportation Electrification Engineering-Electrical and Electronic Engineering
CiteScore
12.20
自引率
15.70%
发文量
449
期刊介绍: IEEE Transactions on Transportation Electrification is focused on components, sub-systems, systems, standards, and grid interface technologies related to power and energy conversion, propulsion, and actuation for all types of electrified vehicles including on-road, off-road, off-highway, and rail vehicles, airplanes, and ships.
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