星形自耦变压器的新型降压拓扑

IF 0.8 4区 工程技术 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC Circuit World Pub Date : 2021-09-16 DOI:10.1108/cw-11-2019-0159
Jiarong Wang, Bo He, Xiaoqiang Chen
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引用次数: 0

摘要

目的在输出相同的情况下,获得一种等效容量较低、降压范围较宽的对称降压拓扑。本文提出了两种新的星形自耦变压器对称降压拓扑结构。以等效容量为主要参数,对所获得的拓扑结构进行了详细的建模和分析。设计/方法论/方法本文采用了设计、建模、分析和仿真验证的研究方法。首先,根据对称降压拓扑的设计目标,对星形自耦变压器进行了重新设计。此外,建立了两种拓扑结构的数学模型,并进行了详细的理论分析。最后,通过仿真验证了理论结果。发现设计了两种对称的星形连接自耦变压器降压拓扑,给出了相应拓扑的绕组配置,计算了这三种拓扑的降压范围,分析了降压比对自耦变压器等效容量的影响。通过分析,得到了降压比分别为[1.1,5.4]和[1.1,1.9]时的目标降压拓扑。研究局限性/含义由于选定的研究对象仅为星形自耦变压器,因此研究结果可能缺乏通用性。因此,鼓励研究人员进一步研究其他自耦变压器的拓扑结构。实际意义本文包括降压比对自耦变压器等效容量和变压器绕组配置的影响。独创性/价值本文设计的拓扑结构使12脉冲整流器中的星形自耦变压器能够应用于降压情况,而不是仅用于谐波降低的情况。同时,本文还为其他多脉冲整流系统中的自耦变压器的重新设计提供了一种方法,使这些变压器能够用于电压调节。
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Novel step-down topologies of star-connected autotransformer
Purpose This paper aims to obtain a symmetrical step-down topology with lower equivalent capacity and wider step-down range under the condition of the same output. Two new symmetrical step-down topologies of star-connected autotransformers are proposed in this paper. Taking the equivalent capacity as the main parameter, the obtained topologies are modeled and analyzed in detail. Design/methodology/approach This paper adopts the research methods of design, modeling, analysis and simulation verification. First, the star-connected autotransformer is redesigned according to the design objective of symmetrical step-down topology. In addition, the mathematical model of two topologies is established and a detailed theoretical analysis is carried out. Finally, the theoretical results are verified by simulation. Findings Two symmetrical star-connected autotransformer step-down topologies are designed, the winding configurations of the corresponding topology are presented, the step-down ranges of these three topologies are calculated and the influence of step-down ratio on the equivalent capacity of autotransformer are analyzed. Through analysis, the target step-down topologies are obtained when the step-down ratio is [1.1, 5.4] and [1.1, 1.9] respectively. Research limitations/implications Because the selected research object is only a star-connected autotransformer, the research results may lack generality. Therefore, researchers are encouraged to further study the topologies of other autotransformers. Practical implications This paper includes the implications of the step-down ratio on the equivalent capacity of autotransformers and the configuration of transformer windings. Originality/value The topologies designed in this paper enable star-connected autotransformer in the 12-pulse rectifier to be applied in step-down circumstances rather than situations of harmonic reduction only. At the same time, this paper provides a way that can be used to redesign the autotransformer in other multi-pulse rectifier systems, so that those transformers can be used in voltage regulation.
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来源期刊
Circuit World
Circuit World 工程技术-材料科学:综合
CiteScore
2.60
自引率
0.00%
发文量
33
审稿时长
>12 weeks
期刊介绍: Circuit World is a platform for state of the art, technical papers and editorials in the areas of electronics circuit, component, assembly, and product design, manufacture, test, and use, including quality, reliability and safety. The journal comprises the multidisciplinary study of the various theories, methodologies, technologies, processes and applications relating to todays and future electronics. Circuit World provides a comprehensive and authoritative information source for research, application and current awareness purposes. Circuit World covers a broad range of topics, including: • Circuit theory, design methodology, analysis and simulation • Digital, analog, microwave and optoelectronic integrated circuits • Semiconductors, passives, connectors and sensors • Electronic packaging of components, assemblies and products • PCB design technologies and processes (controlled impedance, high-speed PCBs, laminates and lamination, laser processes and drilling, moulded interconnect devices, multilayer boards, optical PCBs, single- and double-sided boards, soldering and solderable finishes) • Design for X (including manufacturability, quality, reliability, maintainability, sustainment, safety, reuse, disposal) • Internet of Things (IoT).
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