大连理工大学电气工程学院,大连,116024
纸质出版:2025
移动端阅览
袁铁江, 王康, 1, 等. 氢能提升火电机组灵活性研究综述及展望[J]. 高电压技术, 2025,51(5):2061-2077.
YUAN Tiejiang, WANG Kang, 1, et al. Review and Prospect of Hydrogen Energy to Enhance the Flexibility of Thermal Power Generating Units[J]. 2025, 51(5): 2061-2077.
袁铁江, 王康, 1, 等. 氢能提升火电机组灵活性研究综述及展望[J]. 高电压技术, 2025,51(5):2061-2077. DOI: 10.13336/j.1003-6520.hve.20250374.
YUAN Tiejiang, WANG Kang, 1, et al. Review and Prospect of Hydrogen Energy to Enhance the Flexibility of Thermal Power Generating Units[J]. 2025, 51(5): 2061-2077. DOI: 10.13336/j.1003-6520.hve.20250374.
新型电力系统背景下,新能源占比持续攀升,电网灵活性调节需求大幅增加,火电装机占比显著下降,迫使现役火电机组具备更强的调节能力和更高的灵活性。为此,推动火电机组灵活性改造成为提升电力系统调节能力、保障能源安全的关键。氢能具有绿色清洁、长时大规模存储和高能量密度等优势,通过制-储-用氢环节与火电耦合,有望提升火电深度调峰能力、降低碳排放,为火电灵活性改造提供低碳、高效的全新技术路径。结合火电与氢能产业的发展趋势和政策支撑,概述氢能对提升火电灵活性的应用前景。针对储氢耦合火电机组与储电、储热耦合的技术特征进行对比分析,明确储氢耦合优势。基于当前技术条件与需求,探索火电-氢能耦合技术的可行设计方案,重点分析耦合集成过程涉及的结构设计、动态调控和评价机制等关键问题,深入剖析制-储-用氢各环节与火电耦合技术瓶颈,并提出拟解决思路展望,以期为氢能提升火电机组灵活性研究与应用提供参考。
Under the new power system
the share of renewable energy has significantly increased the demands for grid flexibility regulation
while the decline in thermal power capacity necessitates faster response and greater operational flexibility. Advancing thermal power flexibility transformation has become key to enhancing grid regulation and ensuring energy security. Hydrogen energy
with its advantages of being clean
long-term scalable
and high in energy density
offers a promising solution. By coupling hydrogen production
storage
and utilization with thermal power
deep peak shaving can be enhanced
and carbon emissions can be reduced
providing a low-carbon and high-efficiency pathway for thermal power flexibility transformation. This paper reviews policy trends and industry developments
examines the feasibility and prospects of hydrogen energy in improving thermal power flexibility
and analyzes the advantages of hydrogen storage-thermal power coupling compared to power storage–thermal power and heat storage-thermal power coupling. Unlike power and heat storage
which are limited by short-duration capacity or single-mode regulation
hydrogen storage coupling enables multi-timescale energy buffering
enhances electric–thermal synergy
and improves system scheduling flexibility. Additionally
this paper explores feasible design schemes
and addresses key challenges in structural design
process control
and evaluation mechanisms. Finally
this paper further investigates technical bottlenecks in hydrogen production-storage-use integration
such as energy flow coupling
dynamic matching
and safety constraints
and proposes potential solutions to support research
engineering applications
and large-scale deployment of hydrogen-enhanced thermal power flexibility.
0
浏览量
0
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621