1.西安交通大学国家储能技术产教融合创新平台(中心), 710049,西安
2.中国能源建设集团装备有限公司, 100044,北京
李梦杰(1994—),女,助理教授;
何雅玲(通信作者),女,教授,博士生导师,中国科学院院士。
收稿:2024-05-07,
网络首发:2024-08-19,
纸质出版:2025-02-10
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李梦杰, 刘占斌, 何雅玲, 等. 考虑海上风能波动的水下压缩空气储能系统能量转化特性[J]. 西安交通大学学报, 2025,59(2):1-12.
LI Mengjie, LIU Zhanbin, HE Yaling, et al. Energy Conversion Characteristics of Underwater Compressed Air Energy Storage System Considering Offshore Wind Fluctuation[J]. Journal of Xi’an Jiaotong University, 2025, 59(2): 1-12.
李梦杰, 刘占斌, 何雅玲, 等. 考虑海上风能波动的水下压缩空气储能系统能量转化特性[J]. 西安交通大学学报, 2025,59(2):1-12. DOI: 10.7652/xjtuxb202502001.
LI Mengjie, LIU Zhanbin, HE Yaling, et al. Energy Conversion Characteristics of Underwater Compressed Air Energy Storage System Considering Offshore Wind Fluctuation[J]. Journal of Xi’an Jiaotong University, 2025, 59(2): 1-12. DOI: 10.7652/xjtuxb202502001.
为准确揭示海上风能波动性对水下压缩空气储能系统性能的影响规律,以先进绝热水下压缩空气储能系统为研究对象,首先,建立考虑风能波动性的海上风电-储能系统热力学模型;接着,提出关键设计参数的设计流程;最后,分析了额定工况与变工况条件下储能系统的能量转化特性。研究结果表明:随着导热油与空气质量流量之比
κ
o
a
的增加,水下输气管道散热损失与冷油罐散热损失的变化趋势相反,同时存在
κ
o
a
最优值为1.41,使得系统热损失最小,对应的最大系统能量往返效率
η
rt
为60.3%;设计工况下,储热与换热单元的
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损失最大,约占总损失的36.6%;稳定风速下,当风速偏离设计基础风速时,压缩机与膨胀机的效率降低,导致
η
rt
降低;扰动风速下,随着扰动风分量最大值
v
d
max
增加,受风机额定风速与切出风速的限制,
v
d
max
对储能系统平均发电功率的影响区域可分为快速增长区、增长减缓区以及降低区,3个区域内的
η
rt
均低于额定稳定工况下的设计值。研究可为水下压缩空气储能与海上风电的集成应用提供理论指导。
To accurately assess the impact of offshore wind (OW) fluctuations on the performance of the underwater compressed air energy storage (UWCAES) system
an advanced adiabatic UWCAES was employed as the subject of investigat
ion
firstly
a thermodynamic model of OW-UWCAES was established
followed by the introduction of a design methodology for key operational parameters
and finally the energy conversion characteristics of the UWCAES system were analyzed under rated and variable working conditions in this paper. The results show that: As the ratio of thermal oil to air mass flow rate (
κ
o
a
) increased
the heat losses in the underwater gas pipeline and cold oil tank exhibited opposite trends. An optimal
κ
o
a
existed that minimized the system's heat loss
corresponding to the highest round-trip efficiency (
η
rt
). The optimal
κ
o
a
under the study's design conditions is 1.41
resulting in an
η
rt
of 60.3%. Under the design condition
thermal storage and heat exchange units exhibited the highest exergy losses
accounting for 36.6% of the total exergy losses. For stable wind speeds
deviations from the design wind speed decreased the efficiency of the compressor and expander
leading to a reduction in
η
rt
. For disturbing wind speeds
as the maximum value of the disturbing wind component (
v
d
max
) increased
its impact on average power generation transitioned through a rapidly increasing region
an increasing deceleration region
and a decreasing region due to limitations from the rate wind speed and cut-out speed. In all three regions
the
η
rt
is lower than the design value under rated stable conditions. This study can provide a theoretical guidance for the integrated application of underwater compressed air energy storage and offshore wind power.
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