电工技术学报  2024, Vol. 39 Issue (21): 6647-6665    DOI: 10.19595/j.cnki.1000-6753.tces.231645
电力系统与综合能源 |
船舶中压直流综合电力系统(一):系统结构和电力电子变换器
杨亚宇1,2, 邰能灵2,3, 黄文焘2, 马建军3, 方斯顿4
1.上海海事大学物流工程学院 上海 201306;
2.上海交通大学电力传输与功率变换控制教育部重点实验室 上海 200240;
3.上海交通大学国家电投智慧能源创新学院 上海 200240;
4.重庆大学电气工程学院 重庆 400044
Shipboard Medium-Voltage DC Integrated Power System Ⅰ: System Architecture and Power Electronic Converter
Yang Yayu1,2, Tai Nengling2,3, Huang Wentao2, Ma Jianjun3, Fang Sidun4
1. Logistics Engineering College Shanghai Maritime University Shanghai 201306 China;
2. Key Laboratory of Control of Power Transmission and Conversion Ministry of Education Shanghai Jiao Tong University Shanghai 200240 China;
3. College of Smart Energy Shanghai Jiao Tong University Shanghai 200240 China;
4. School of Electrical Engineering Chongqing University Chongqing 400044 China
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摘要 船舶中压直流综合电力系统具有高功率密度、高运行灵活性等优势,是我国实施海洋强国战略的重要基础。该论文的第一部分首先分析了船舶电力系统的发展趋势,从拓扑结构、电压等级、接线形式、接地方式等角度梳理了船舶中压直流综合电力系统的特殊系统结构;然后,根据现有文献详细阐述了发电侧整流器、推进变流器、DC-DC变换器等船舶中压直流综合电力系统关键电力电子变换器的研究现状,并进行了详细对比;最后,总结了船舶中压直流综合电力系统与陆上直流微电网的典型差异,并梳理了国内外相关技术标准。
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杨亚宇
邰能灵
黄文焘
马建军
方斯顿
关键词 中压直流船舶综合电力系统系统结构电力电子变换器    
Abstract:Shipboard integrated power system (IPS) is an important revolution of shipboard power system, which has a cross-era significance. However, with the increasement of the shipboard IPS capacity, the conventional low-voltage level shipboard IPS can hardly meet the power demand of shipboard power equipment. The shipboard medium-voltage DC (MVDC) IPS has the advantages of high power density, high operation efficiency, high operation flexibility and high operation reliability, and thus has received widespread attention in recent years.
As the first part, this paper focuses on the system architecture and power electronic converter of the shipboard MVDC IPS.
Firstly, this paper analyzes the development trends of the shipboard IPS, and makes a comprehensive review of the special system architecture of the shipboard MVDC IPS from the perspectives of topology architecture, voltage level, wire connection type, and grounding mode. (1) Topology architecture. The radial topology is simple, and its system construction cost is low; the zonal topology has high redundancy, good flexibility, and high reliability. (2) Voltage level. With the improvement of shipboard IPS capacity, the voltage level of the shipboard MVDC IPS may reach 24 kV or 30 kV in the future. (3) Wire connection type. Monopole symmetrical connection type is suitable for most shipboard MVDC IPS; for large ship with high power supply reliability requirements, bipolar connection type is better. (4) Grounding mode. For the AC side of the power supply end, the shipboard medium voltage power grid adopts the mode of grounding with large resistor; for the DC side of the load end, the grounding mode of the shipboard MVDC IPS can refer to the grounding mode of the onshore DC microgrid; for the DC side of the power supply end, the mode of grounding with resistors is better.
Then, according to the existing literature, the key power electronic converters in shipboard MVDC IPS, such as the rectifier for generator, the inverter for propulsion motor, and the DC-DC converter, are comprehensive reviewed, and detailed comparisons are made. (1) Rectifier for generator. The diode rectifier has the advantages of low cost, simple structure, no complex control, high reliability, low power loss and small space occupation. The diode rectifier can be used as the rectifier for the shipboard MVDC IPS generator. (2) Inverter for propulsion motor. Modular multilevel converter (MMC) has good performance. However, when the MMC for propulsion motor is operating at low speeds (especially with high-torque load), the voltage fluctuates greatly. In comparison, the two-level voltage source converter (VSC) has lower costs, more mature technology, and higher reliability. (3) DC-DC converter. Currently, SiC-based medium voltage DC-DC converters are not commercially available. For three-level/five-level DC-DC converters, the capacitor voltage equalization problem still needs to be studied in the future. The input-series output-parallel (ISOP) DAB and MMC DC-DC converter have strong scalability and fault tolerant operation capability, and they are feasible shipboard MVDC IPS DC-DC converters.
Finally, the typical differences between the shipboard MVDC IPS and the onshore DC microgrid are summarized, and the latest technical standards for shipboard MVDC IPS are sorted out.
As the first part, this paper is the basis for the second part: protection and fault management technology.
Key wordsMedium-voltage DC    shipboard integrated power system    system architecture    power electronic converter   
收稿日期: 2023-10-08     
PACS: TM711  
基金资助:国家自然科学基金(52337006)、上海市2023年科技创新行动计划启明星培育(扬帆计划)(23YF1416000)、上海市优秀学术带头人计划(22XD1401400)、电力传输与功率变换控制教育部重点实验室开放课题(2022AB02)和上海市科技计划(20040501200)资助项目
通讯作者: 邰能灵, 男,1972年生,教授,博士生导师,研究方向为电力系统继电保护、电力系统综合自动化。E-mail:nltai@sjtu.edu.cn   
作者简介: 杨亚宇, 男,1991年生,博士,硕士生导师,研究方向为船舶电力系统继电保护与控制、直流电网。E-mail:1098196711@163.com
引用本文:   
杨亚宇, 邰能灵, 黄文焘, 马建军, 方斯顿. 船舶中压直流综合电力系统(一):系统结构和电力电子变换器[J]. 电工技术学报, 2024, 39(21): 6647-6665. Yang Yayu, Tai Nengling, Huang Wentao, Ma Jianjun, Fang Sidun. Shipboard Medium-Voltage DC Integrated Power System Ⅰ: System Architecture and Power Electronic Converter. Transactions of China Electrotechnical Society, 2024, 39(21): 6647-6665.
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