{"title":"Partial Power Processing Multi-Port DC-DC Converters","authors":"Guipeng Chen, Yuwei Liu, Wenfeng Cui","doi":"10.1109/IECON43393.2020.9255005","DOIUrl":null,"url":null,"abstract":"With the favorable merit of handling only a fraction of system power, partial power processing (PPP) converter gains increasing attention in the engineering application with high requirement on power density and efficiency. However, most studies focus on the PPP two-port dc-dc converters, while how to derive PPP multi-port converters is still kept unclear. Hence, this paper aims to explore the principle of PPP multi-port dc-dc converters, and consequently, a family of viable PPP multi-port configurations is derived. In order to achieve a better understanding, PPP three-port converter with three isolated modules is firstly presented and introduced in detail, which has three possible configurations. The voltage relationship among three ports are more flexible than the PPP two-port converter that step-up/down voltage gain can be inherently attained. Moreover, two isolated modules can be further integrated into a hybrid one, so that components are able to be more reduced. By employing typical fully/partially isolated three-port converters such as triple active bridge converter to the proposed configurations, the corresponding PPP three-port converters are simply obtained. Finally, with the increasing number of ports, the configuration and characteristics of PPP multi-port converter will be more diverse. As an example, PPP four-port as well as five-port configurations are shown in the paper.","PeriodicalId":13045,"journal":{"name":"IECON 2020 The 46th Annual Conference of the IEEE Industrial Electronics Society","volume":"49 1","pages":"1406-1411"},"PeriodicalIF":0.0000,"publicationDate":"2020-10-18","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"3","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"IECON 2020 The 46th Annual Conference of the IEEE Industrial Electronics Society","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1109/IECON43393.2020.9255005","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 3
Abstract
With the favorable merit of handling only a fraction of system power, partial power processing (PPP) converter gains increasing attention in the engineering application with high requirement on power density and efficiency. However, most studies focus on the PPP two-port dc-dc converters, while how to derive PPP multi-port converters is still kept unclear. Hence, this paper aims to explore the principle of PPP multi-port dc-dc converters, and consequently, a family of viable PPP multi-port configurations is derived. In order to achieve a better understanding, PPP three-port converter with three isolated modules is firstly presented and introduced in detail, which has three possible configurations. The voltage relationship among three ports are more flexible than the PPP two-port converter that step-up/down voltage gain can be inherently attained. Moreover, two isolated modules can be further integrated into a hybrid one, so that components are able to be more reduced. By employing typical fully/partially isolated three-port converters such as triple active bridge converter to the proposed configurations, the corresponding PPP three-port converters are simply obtained. Finally, with the increasing number of ports, the configuration and characteristics of PPP multi-port converter will be more diverse. As an example, PPP four-port as well as five-port configurations are shown in the paper.
部分功率处理转换器(partial power processing, PPP)在对功率密度和效率要求较高的工程应用中越来越受到重视,其处理功率只占系统功率的一小部分。然而,大多数研究都集中在PPP双端口dc-dc转换器上,而如何推导PPP多端口转换器仍不清楚。因此,本文旨在探讨PPP多端口dc-dc转换器的原理,从而推导出一系列可行的PPP多端口配置。为了更好地理解,本文首先提出并详细介绍了PPP三端口三隔离模块转换器,它有三种可能的配置。三端口之间的电压关系比PPP双端口变换器更灵活,可以固有地获得升压/降压增益。此外,两个孤立的模块可以进一步集成为一个混合模块,从而能够更少的组件。通过采用典型的全/部分隔离三端口转换器,如三有源桥式转换器,简单地得到了相应的PPP三端口转换器。最后,随着端口数量的增加,PPP多端口转换器的配置和特性将更加多样化。举例说明了PPP的四端口配置和五端口配置。