根据循环电流大小分析三角连接无刷直流电机的效率

IF 2.1 3区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Magnetics Pub Date : 2024-09-23 DOI:10.1109/TMAG.2024.3465879
Ho-Young Lee;Kyoung-Soo Cha;Soon-O Kwon;Seung-Young Yoon;Chang-Hoon Seok;Myung-Seop Lim
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引用次数: 0

摘要

在三角连接中,大部分电池电压都直接施加到电机的相位端子上,因此电压根部要比在 Wye 连接中高出三倍。这一特性使得三角连接适用于低压高速系统。然而,三角连接电机的相背电动势(BEMF)中存在 3 次 n 次谐波分量,会诱发只在电路内流动的环流。这些环流会导致额外的焦耳损耗并降低电机性能。本文根据不同的转速和扭矩分析了环流对电机效率的影响。所介绍的研究模型保持了相似的 BEMF 基本分量大小,但三次谐波分量的大小不同。利用有限元分析 (FEA) 建立了一个六步电路,以比较研究模型的电流、损耗和效率。铜损耗分为相电流基波分量引起的损耗和环流引起的损耗。随后,考虑到分离的铜损耗成分和铁损耗,比较了不同转速和扭矩范围内研究模型的效率。结果表明,改进后的模型在低速和低扭矩区域的效率比基本模型高出 18% 以上。最后,对研究模型进行了制造和测试评估。
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Efficiency Analysis of BLDC Motor With Delta Connection According to Magnitude of Circulating Current
In a delta connection, most of the battery voltage is applied directly to the motor’s phase terminals, resulting in a voltage that is root three times higher than in a wye connection. This characteristic makes delta connections suitable for low-voltage, high-speed systems. However, the presence of 3 n-th harmonic components in the phase back electromotive force (BEMF) of delta-connected motors can induce circulating currents that flow exclusively within the circuit. These circulating currents lead to additional Joule losses and degrade motor performance. This article analyzes the effect of circulating currents on motor efficiency according to different speeds and torques. The presented study models maintain a similar magnitude of the fundamental component of BEMF but differ in the magnitude of the third harmonic component. A six-step circuit was established to compare the currents, losses, and efficiencies of the study models using finite element analysis (FEA). The copper losses were categorized into those caused by the fundamental component of phase current and those caused by the circulating currents. Subsequently, the efficiencies of the study models were compared across different speed and torque ranges, accounting for the separated copper loss components and iron losses. The results show that the improved model achieves an efficiency that is more than 18% higher than that of the basic model in the low-speed and low-torque areas. Finally, the study models were manufactured and evaluated through testing.
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来源期刊
IEEE Transactions on Magnetics
IEEE Transactions on Magnetics 工程技术-工程:电子与电气
CiteScore
4.00
自引率
14.30%
发文量
565
审稿时长
4.1 months
期刊介绍: Science and technology related to the basic physics and engineering of magnetism, magnetic materials, applied magnetics, magnetic devices, and magnetic data storage. The IEEE Transactions on Magnetics publishes scholarly articles of archival value as well as tutorial expositions and critical reviews of classical subjects and topics of current interest.
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Front Cover Table of Contents IEEE Transactions on Magnetics Institutional Listings IEEE Transactions on Magnetics Publication Information IEEE Magnetics Society Information
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