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Optimal control strategy for large-scale VRB energy storage auxiliary power system in peak shaving

机译:大尺寸VRB储能辅助电力系统的最优控制策略

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摘要

Large-scale battery energy storage is an inevitable trend in energy storage development. The large-scale all-vanadium liquid-flow battery energy storage system contains a large number of battery energy storage units. Current operation methods usually study large-scale energy storage as an equivalent model. There is a lack of optimization for the operation of modular energy storage units. Efficient and stable operation of large-scale energy storage needs to coordinate the operation of various energy storage units. A battery simulation model was built according to the working mechanism and external characteristics of the vanadium redox battery (VRB). Based on the simulation model, the voltage and current loss characteristics of the vanadium redox battery under the rated power charging and discharging mode were studied. Based on the model, the change in charging and discharging efficiency under different powers is measured. The power-efficiency coupling relationship is studied. The power-efficiency coupling relationship provides the basis for power allocation with the aim of optimizing efficiency. Then, combining the structure of the large-scale vanadium redox battery energy storage system and the power-efficiency coupling relationship, a large-scale energy storage system efficiency mathematical model is constructed. In a peak shaving scenario, aiming at optimizing the efficiency of the energy storage system and according to the efficiency mathematical model of the large-scale energy storage system, a coordinated and optimized operation strategy of the energy storage module is proposed. This module improves the efficiency of the energy storage system.
机译:大型电池储能是储能开发的必然趋势。大型全钒液流电池储能系统包含大量电池储能单元。当前操作方法通常将大规模的能量存储作为等效模型研究。模块化能存储单元的操作缺乏优化。大规模能量存储的高效稳定运行需要协调各种能量存储单元的操作。根据钒氧化还原电池(VRB)的工作机制和外部特性建立了电池仿真模型。基于仿真模型,研究了额定功率充电和放电模式下的钒氧化还原电池的电压和电流损失特性。基于该模型,测量了不同功率下充电和放电效率的变化。研究了功率效率耦合关系。功率效率耦合关系为功率分配提供了效率的基础。然后,组合大规模钒氧化还原电池能量存储系统的结构和功率效率耦合关系,构建了大规模的能量存储系统效率数学模型。在峰值剃刮场景中,旨在优化能量存储系统的效率,并根据大规模能量存储系统的效率数学模型,提出了能量存储模块的协调和优化的操作策略。该模块提高了能量存储系统的效率。

著录项

  • 来源
    《International journal of electrical power and energy systems》 |2020年第9期|106007.1-106007.13|共13页
  • 作者单位

    Northeast Elect Power Univ Minist Educ Key Lab Modern Power Syst Simulat & Control & Ren Jilin 132012 Jilin Peoples R China;

    Northeast Elect Power Univ Minist Educ Key Lab Modern Power Syst Simulat & Control & Ren Jilin 132012 Jilin Peoples R China;

    Northeast Elect Power Univ Minist Educ Key Lab Modern Power Syst Simulat & Control & Ren Jilin 132012 Jilin Peoples R China;

    State Grid Zhejiang Elect Power Co Jinhua Power S Jinhua 321017 Zhejiang Peoples R China;

    Northeast Elect Power Univ Minist Educ Key Lab Modern Power Syst Simulat & Control & Ren Jilin 132012 Jilin Peoples R China;

    Northeast Elect Power Univ Minist Educ Key Lab Modern Power Syst Simulat & Control & Ren Jilin 132012 Jilin Peoples R China;

    State Grid Jilin Elect Power Co Ltd Elect Power Res Inst Changchun Peoples R China;

    State Grid Jilin Elect Power Co Ltd Elect Power Res Inst Changchun Peoples R China;

    State Grid Jilin Elect Power Co Ltd Elect Power Res Inst Changchun Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Vanadium redox battery; Modeling; State of charge; Peak shift; Coordinate operation;

    机译:钒氧化还原电池;建模;充电状态;峰值转移;坐标操作;

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