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一种用于电-氢混合储能系统部件 sizing 与能量管理的优化框架
An Optimization Framework for Component Sizing and Energy Management in Electric-Hydrogen Hybrid Energy Storage Systems
| 作者 | Yuzhen Tang · Qian Xun · Zhuoqun Zheng · Fanqi Min · Chengwei Deng · Jingying Xie |
| 期刊 | IEEE Transactions on Sustainable Energy |
| 出版日期 | 2025年3月 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 电氢混合储能系统 粒子群优化算法 能量管理策略 人工势场 OP - APF框架 |
语言:
中文摘要
本文提出一种优化框架,用于解决风力发电耦合电-氢混合储能系统的部件容量配置与能量管理问题。采用粒子群优化算法最小化系统总成本,优化四个变量:电解槽与超级电容器容量,以及能量管理策略中的两项参数。该策略引入人工势场法,基于超级电容器荷电状态定义虚拟力以分配风电功率,并优化虚拟力形状参数和功率分配基准参数。低通滤波器截止频率根据优化后的参数自适应调整,故称“OP-APF”框架。MATLAB与实时仿真验证表明,相较于三种基准方案,OP-APF在降低系统成本、控制荷电状态及减缓电解槽退化方面更具优势。
English Abstract
This paper proposes an optimization framework to address the component sizing and energy management problems in an electric-hydrogen hybrid energy storage system connected to a wind turbine. The total cost of the hybrid system is minimized using a particle swarm optimization (PSO) algorithm. In particular, four decision variables are optimized: the electrolyzer (EL) size, the supercapacitor (SC) size, and two parameters in the energy management strategy (EMS). To determine the power split factor for the wind power, the EMS introduces an artificial potential field (APF) and defines a virtual force based on the SC state of charge (SOC). Two APF parameters are optimized to tune the power allocation between the EL and the SC: the shaping parameter of the virtual force and the basis parameter of the power split factor. Since the cutoff frequency of the low pass filter (LPF) in the EMS is adaptively updated based on the optimized APF parameters, the proposed framework is referred to as the “OP-APF” framework. The effectiveness of the OP-APF framework is validated by performing MATLAB and real-time simulations. Compared to three baseline frameworks, OP-APF is more effective in reducing the system total cost, controlling the SC SOC, and alleviating the EL degradation.
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SunView 深度解读
该电-氢混合储能优化框架对阳光电源PowerTitan储能系统与新能源制氢业务具有重要应用价值。文中基于人工势场法的能量管理策略(OP-APF)可直接应用于ST系列储能变流器的多时间尺度功率分配算法,通过超级电容处理高频功率波动、氢储能应对长周期能量平衡,延长电池循环寿命。粒子群优化算法可集成至iSolarCloud平台,实现风光储氢系统的容量配置优化与成本最小化。自适应低通滤波器设计可优化阳光电源构网型GFM控制中的功率指令生成,提升新能源并网系统的频率稳定性。该框架为阳光电源拓展氢能业务、开发多能互补ESS集成方案提供理论支撑,特别适用于海上风电制氢等场景。