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基于RPC的光储接入牵引供电系统协调控制方法

陈维荣,王小雨,韩莹,臧治,李奇,沈文杰,许程鹏

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陈维荣, 王小雨, 韩莹, 臧治, 李奇, 沈文杰, 许程鹏. 基于RPC的光储接入牵引供电系统协调控制方法[J]. 江南娱乐网页版入口官网下载安装学报, 2024, 59(1): 1-10. doi: 10.3969/j.issn.0258-2724.20211058
引用本文: 陈维荣, 王小雨, 韩莹, 臧治, 李奇, 沈文杰, 许程鹏. 基于RPC的光储接入牵引供电系统协调控制方法[J]. 江南娱乐网页版入口官网下载安装学报, 2024, 59(1): 1-10.doi:10.3969/j.issn.0258-2724.20211058
CHEN Weirong, WANG Xiaoyu, HAN Ying, ZANG Zhi, LI Qi, SHEN Wenjie, XU Chengpeng. Coordinated Control Method of Photovoltaic and Battery System Connected to Traction Power Supply System Based on Railway Power Conditioner[J]. Journal of Southwest Jiaotong University, 2024, 59(1): 1-10. doi: 10.3969/j.issn.0258-2724.20211058
Citation: CHEN Weirong, WANG Xiaoyu, HAN Ying, ZANG Zhi, LI Qi, SHEN Wenjie, XU Chengpeng. Coordinated Control Method of Photovoltaic and Battery System Connected to Traction Power Supply System Based on Railway Power Conditioner[J].Journal of Southwest Jiaotong University, 2024, 59(1): 1-10.doi:10.3969/j.issn.0258-2724.20211058

基于RPC的光储接入牵引供电系统协调控制方法

doi:10.3969/j.issn.0258-2724.20211058
基金项目:国家自然科学基金(52077180,52007157)
详细信息
    作者简介:

    陈维荣(1965—),男,教授,研究方向为电力系统及其自动化,E-mail:wrchen@swjtu.edu.cn

    通讯作者:

    韩莹(1990—),男,副教授,研究方向为微电网/综合能源系统运行与控制,E-mail:hanying@swjtu.edu.cn

  • 中图分类号:U223.6

Coordinated Control Method of Photovoltaic and Battery System Connected to Traction Power Supply System Based on Railway Power Conditioner

  • 摘要:

    为将光伏发电接入牵引供电系统进行有效利用,同时兼顾牵引供电系统电能质量改善及列车再生制动能量回收利用,提出了一种基于铁路功率调节器的光储系统接入牵引供电系统的协调控制方法. 首先,搭建基于铁路功率调节器的光储系统接入牵引供电拓扑结构,并对其电能质量补偿机理进行理论分析;在此基础上,充分考虑光储系统的运行条件以及列车牵引、制动、空载或惰行工况,提出光储系统接入牵引供电的联合协调控制方法,实现了“光 + 储 + 荷”三者间的协调控制、牵引供电系统负序的动态补偿以及谐波的有效抑制;在RT-Lab实时仿真系统中建立了基于铁路功率调节器的光伏接入牵引供电系统仿真模型,并结合实际光照和牵引工况数据验证本文所提出的系统结构以及协调控制方法的有效性. 结果表明:本文所提出的系统结构以及协调控制方法能够实现牵引供电系统中光储系统的有效接入,再生制动能量回收率提升至86.7%,功率因数提升 6.4%,对谐波特别是高次谐波含有率有较大改善,满足光伏电能高效消纳及综合利用、电能质量动态综合补偿、再生制动能量回收多重需求.

  • 图 1基于RPC的牵引供电系统综合补偿结构图

    Figure 1.Comprehensive compensation structure of traction power supply system based on RPC

    图 2RPC结构

    Figure 2.Structure of RPC

    图 3整体结构与协调控制框图

    Figure 3.Block diagram of overall structure and coordinated control

    图 4光储荷系统功率控制流程图

    Figure 4.Flow chart of power control for “PV + battery + load” system

    图 5补偿前、后三相侧电流变化

    Figure 5.Three-phase side current changes before and after compensation

    图 6不同工况下功率流情况

    Figure 6.Power flow under different working conditions

    图 7供电臂实际负荷情况

    Figure 7.Actual load situation of left and right power supply arms

    图 8不同光照情况下光伏输出功率

    Figure 8.PV output power under different illuminations

    图 9光储 + RPC接入前负序电流

    Figure 9.Negative sequence current before PV and battery + RPC access

    图 10光储 + RPC接入后2种光照下的负序电流

    Figure 10.Negative sequence current under two kinds of illumination after PV and battery + RPC access

    图 11光储 + RPC接入前后谐波电流含有率变化

    Figure 11.Changes in current ratio of each harmonic before and after PV and battery + RPC access

    表 1仿真模型主要参数

    Table 1.Main parameters of simulation model

    子系统 参数 数值
    牵引变压器 变比 220/27.5
    降压变压器 变比 27.5/1
    变流器 直流侧电压/V 4000
    RPC 直流电容/F 0.02
    RPC 交流电感/H 0.0001
    光伏装机 容量/MW 3.265
    蓄电池 容量/MW 6
    下载: 导出CSV

    表 2各次谐波电流含有率

    Table 2.Current ratio of each harmonic

    谐波次数/次 含有率/% 谐波次数/次 含有率/%
    3 9.725 31 5.108
    5 2.683 33 3.230
    7 2.750 35 9.415
    9 1.750 37 3.388
    11 1.575 39 4.708
    下载: 导出CSV
  • [1] 习近平. 继往开来, 开启全球应对气候变化新征程: 在气候雄心峰会上的讲话[N]. 中华人民共和国国务院公报, 2020-12-12.
    [2] 赵剑波,王蕾. “十四五”构建以新能源为主体的新型电力系统[J]. 中国能源,2021,43(5): 17-21.

    ZHAO Jianbo, WANG Lei. Research on the new power system during the 14th five-year plan[J]. Energy of China, 2021, 43(5): 17-21.
    [3] 邹游,周婕. 高速铁路对城市及区域发展的影响研究综述[J]. 城市交通,2018,16(4): 15-25.

    ZOU You, ZHOU Jie. Impact of high-speed railway on urban and regional development: a literature review[J]. Urban Transport of China, 2018, 16(4): 15-25.
    [4] VASISHT M S, VASHISTA G A, SRINIVASAN J, et al. Rail coaches with rooftop solar photovoltaic systems: a feasibility study[J]. Energy, 2017, 118: 684-691.doi:10.1016/j.energy.2016.10.103
    [5] JAFFERY S H I, KHAN M, ALI L, et al. The potential of solar powered transportation and the case for solar powered railway in Pakistan[J]. Renewable and Sustainable Energy Reviews, 2014, 39: 270-276.doi:10.1016/j.rser.2014.07.025
    [6] 陈维荣,王璇,李奇,等. 光伏电站接入轨道交通牵引供电系统发展现状综述[J]. 电网技术,2019,43(10): 3663-3670.

    CHEN Weirong, WANG Xuan, LI Qi, et al. Review on the development status of PV power station accessing to traction power supply system for rail transit[J]. Power System Technology, 2019, 43(10): 3663-3670.
    [7] 伍勇旭,杨光. 关于我国可再生能源发展的政策思考[J]. 中国能源,2016,38(9): 23-25.

    WU Yongxu, YANG Guang. Considerations on China renewable energy development policy[J]. Energy of China, 2016, 38(9): 23-25.
    [8] 邓文丽,戴朝华,陈维荣. 光伏接入牵引供电系统的多元制约因素初探[J]. 太阳能学报,2020,41(8): 192-203.

    DENG Wenli, DAI Chaohua, CHEN Weirong. Preliminary research of multiple constriction for PV access traction power supply system[J]. Acta Energiae Solaris Sinica, 2020, 41(8): 192-203.
    [9] MAYER O, LYNASS M, GÓMEZ M, et al. Design aspects for high voltage MW PV systems for railway power supply[C]//European PV Solar Energy Conference. Amsterdam: [s.n.], 2014: 2876-2879.
    [10] 吴传平,罗安,徐先勇,等. 采用V/V变压器的高速铁路牵引供电系统负序和谐波综合补偿方法[J]. 中国电机工程学报,2010,30(16): 111-117.

    WU Chuanping, LUO An, XU Xianyong, et al. Integrative compensation method of negative phase sequence and harmonic for high-speed railway traction supply system with V/V transformer[J]. Proceedings of the CSEE, 2010, 30(16): 111-117.
    [11] 邓文丽,戴朝华,陈维荣,等. 铁路功率调节器研究进展[J]. 中国电机工程学报,2020,40(14): 4640-4655, 4742.

    DENG Wenli, DAI Chaohua, CHEN Weirong, et al. Research progress of railway power conditioner[J]. Proceedings of the CSEE, 2020, 40(14): 4640-4655, 4742.
    [12] 陈金霞. 基于RPC控制的光伏并网功率调节器及其控制策略[J]. 电气传动,2019,49(4): 61-66.

    CHEN Jinxia. RPC based on PV grid-connected power conditioner and its control strategy[J]. Electric Drive, 2019, 49(4): 61-66.
    [13] 邓文丽,戴朝华,韩春白雪,等. 计及再生制动能量回收和电能质量改善的铁路背靠背混合储能系统及其控制方法[J]. 中国电机工程学报,2019,39(10): 2914-2924.

    DENG Wenli, DAI Chaohua, HAN Chunbaixue, et al. Back-to-back hybrid energy storage system of electric railway and its control method considering regenerative braking energy recovery and power quality improvement[J]. Proceedings of the CSEE, 2019, 39(10): 2914-2924.
    [14] 魏文婧,胡海涛,王科,等. 基于铁路功率调节器的高速铁路牵引供电系统储能方案及控制策略[J]. 电工技术学报,2019,34(6): 1290-1299.

    WEI Wenjing, HU Haitao, WANG Ke, et al. Energy storage scheme and control strategies of high-speed railway based on railway power conditioner[J]. Transactions of China Electrotechnical Society, 2019, 34(6): 1290-1299.
    [15] 马伏军,罗安,吴传平,等. V/V牵引供电系统中铁路功率调节器的控制方法研究[J]. 中国电机工程学报,2011,31(13): 63-70.

    MA Fujun, LUO An, WU Chuanping, et al. Control methods of railway static power regulator for V/V electrified traction railway[J]. Proceedings of the CSEE, 2011, 31(13): 63-70.
    [16] 徐敏,吴越涛,赵剑锋. 基于鉴相原理的新型单相电路谐波检测方法[J]. 电工电气,2009(1): 50-52,62.

    XU Min, WU Yuetao, ZHAO Jianfeng. Novel detection method for harmonic current in single-phase circuit based on the principle of phase discrimination[J]. Electrotechnics Electric, 2009(1): 50-52,62.
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出版历程
  • 收稿日期:2021-12-24
  • 修回日期:2022-05-10
  • 网络出版日期:2023-11-03
  • 刊出日期:2022-05-12

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