Power Converter Topologies for Multiphase Drive Applications

Carlos A. Reusser
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引用次数: 1

Abstract

The yet growing demand for higher demanding industrial applications and the global concern about harmful emissions in the atmosphere have increased the interest for new developments in electric machines and power converters. To meet these new requirements, multiphase machines have become a very attractive solution, offering potential advantages over three-phase classical solutions. Multiphase machine ’ s power demand can be split over more than three phases, thus reducing the electric field stress on each winding (protecting the insulation system) and the requirements on maximum power ratings, for semiconductor devices. Moreover, only two degrees of freedom (i.e. two independently controllable currents) are required for independent flux and torque control. Due to the previous facts, the use of multiphase drives has become very attractive for applications and developments in areas such as electric ship propulsion, more-electric aircraft, electric and hybrid electric road vehicles, electric locomotive traction and in renewable electric energy generation. As a consequence of this multiphase drive tendency, the development of power converter topologies, capable of dealing with high power ratings and handling multiphase winding distributions, has encourage the development of new converter topologies, control strategies and mathematical tools, to face this new challenge.
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多相驱动应用的电源转换器拓扑结构
对更高要求的工业应用日益增长的需求,以及全球对大气中有害排放物的关注,增加了对电机和电源转换器新发展的兴趣。为了满足这些新的要求,多相电机已经成为一个非常有吸引力的解决方案,提供比三相经典解决方案潜在的优势。多相电机的功率需求可以分为三个以上的相位,从而减少了每个绕组上的电场应力(保护绝缘系统)和对半导体器件的最大额定功率的要求。此外,独立磁链和转矩控制只需要两个自由度(即两个独立可控的电流)。由于上述事实,多相驱动的使用在电动船舶推进、电动飞机、电动和混合动力道路车辆、电力机车牵引和可再生能源发电等领域的应用和发展中变得非常有吸引力。由于这种多相驱动趋势,能够处理高额定功率和处理多相绕组分布的功率转换器拓扑的发展,鼓励了新的转换器拓扑,控制策略和数学工具的发展,以面对这一新的挑战。
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