发电技术 ›› 2025, Vol. 46 ›› Issue (2): 386-398.DOI: 10.12096/j.2096-4528.pgt.24052
• 新型电力系统 • 上一篇
李亚楼1, 赵飞1, 樊雪君2
收稿日期:
2024-04-01
修回日期:
2024-05-27
出版日期:
2025-04-30
发布日期:
2025-04-23
作者简介:
基金资助:
Yalou LI1, Fei ZHAO1, Xuejun FAN2
Received:
2024-04-01
Revised:
2024-05-27
Published:
2025-04-30
Online:
2025-04-23
Supported by:
摘要:
目的 “双高”电力系统(高比例可再生能源和高比例电力电子设备)低惯性、低阻尼的特征使电网在频率、电压等稳定问题面临着严峻的挑战。构网型储能(grid-forming energy storage,GFM-ES)具有频率调节和电压控制的能力,针对其特性、应用场景和研究展望等方面进行综述。 方法 首先从GFM-ES和跟网型储能的区别以及控制方法等方面阐述了GFM-ES的主要特点;然后从频率支撑、电压支撑和黑启动等方面介绍了GFM-ES的主要应用场景;最后从GFM-ES的稳定性、优化配置和实际工程应用等方面提出了研究展望。 结论 构网型变流器的稳定性对储能机组的运行特性具有重要影响,需要进一步关注稳定问题的诱导原因、参数整定、控制和限流策略切换等;GFM-ES规划配置中,需要在功能性、复杂性、成本等方面进行权衡,以及构网型和跟网型储能的混合配置有待继续研究;加强GFM-ES机组之间的协调性和运行交互性,完善工程测试规范和标准,推动其在交直流混合电网及高压输电网络的应用。
中图分类号:
李亚楼, 赵飞, 樊雪君. 构网型储能及其应用综述[J]. 发电技术, 2025, 46(2): 386-398.
Yalou LI, Fei ZHAO, Xuejun FAN. Review of Grid-Forming Energy Storage and Its Applications[J]. Power Generation Technology, 2025, 46(2): 386-398.
跟网型储能 | 构网型储能 |
---|---|
可视为恒流源 | 可视为电压源 |
需要PLL | 无需PLL |
无法黑启动 | 可以黑启动 |
不能控制电网的频率和电压 | 可主动调整输出频率和电压 |
不利于故障限流和穿越实现 | 有利于故障限流和穿越实现 |
循环效率优于构网型储能 | 循环效率低于跟网型储能 |
无法在完全(100%)电力电子设备系统中运行 | 理论上可以在完全(100%)电力电子设备系统中运行 |
目前应用广泛,只适用于强电网,不适用于孤岛 | 目前应用较少,可适用于弱电网和孤岛 |
表1 跟网型储能和构网型储能的特性对比
Tab. 1 Comparison of the characteristics of grid-following and grid-forming energy storage
跟网型储能 | 构网型储能 |
---|---|
可视为恒流源 | 可视为电压源 |
需要PLL | 无需PLL |
无法黑启动 | 可以黑启动 |
不能控制电网的频率和电压 | 可主动调整输出频率和电压 |
不利于故障限流和穿越实现 | 有利于故障限流和穿越实现 |
循环效率优于构网型储能 | 循环效率低于跟网型储能 |
无法在完全(100%)电力电子设备系统中运行 | 理论上可以在完全(100%)电力电子设备系统中运行 |
目前应用广泛,只适用于强电网,不适用于孤岛 | 目前应用较少,可适用于弱电网和孤岛 |
分类 | 控制结构 |
---|---|
下垂控制 | 基于频率的下垂控制[ 基于角度的下垂控制[ 功率同步控制[ |
基于同步机的控制 | 虚拟同步机[ 摆动方程模拟[ 增强的虚拟同步发电机控制[ 同步变流器[ 匹配控制[ |
其他控制方式 | 基于虚拟振荡器的方法[ 基于H∞\H2的鲁棒控制[ 基于频率构形的控制[ |
表2 构网型储能的常用控制方式
Tab. 2 Common control methods for grid-forming energy storage
分类 | 控制结构 |
---|---|
下垂控制 | 基于频率的下垂控制[ 基于角度的下垂控制[ 功率同步控制[ |
基于同步机的控制 | 虚拟同步机[ 摆动方程模拟[ 增强的虚拟同步发电机控制[ 同步变流器[ 匹配控制[ |
其他控制方式 | 基于虚拟振荡器的方法[ 基于H∞\H2的鲁棒控制[ 基于频率构形的控制[ |
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