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储能系统技术
★ 5.0
盐穴大规模氢储能集成至风光储电力系统的应用:技术与经济优势
Integration of a salt cavern for large-scale hydrogen storage into a solar-wind-storage power system: Technical and economic advantages
| 作者 | Jingze Yanga · Binbin Fua · Jiaqi Penga · Guibin Wangb · Hong Yaoa |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 393 卷 |
| 技术分类 | 储能系统技术 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Solar-wind-storage system with salt cavern hydrogen storage is proposed and studied. |
语言:
中文摘要
摘要 在高比例可再生能源发电系统中,电力供需之间的跨季节失配问题日益突出。仅依赖成熟的储能技术(如电化学储能和热储能)难以有效应对这一挑战。本文利用盐穴实现大规模氢储能,并与电池储能和热储能形成互补,从而实现风光电力系统在多时间尺度上的功率调节。通过以平准化度电成本(LCOE)、电力供应缺失概率(LPSP)和弃电总量为优化目标的多目标优化,获得系统的最优配置及容量参数,并将综合性能与不含氢储能装置的系统以及采用氢气罐储氢的系统进行对比。结果表明,在供电可靠性极高的条件下,引入低成本、大规模的盐穴氢储能可显著降低发电与储能设备的装机容量,从而降低平准化度电成本并提升电力消纳能力。当全年电力需求完全满足时,所提系统的LCOE为0.244美元/kWh,较采用氢气罐的系统降低0.216美元/kWh,展现出巨大的经济优势;相较于不含氢储能装置的系统,LCOE亦可降低0.055美元/kWh。更为重要的是,在三目标优化下,年均弃电量可减少76%。尽管盐穴氢储能技术在特定供电场景中具备显著优势,但加速降低电解槽和燃料电池的单位投资成本仍尤为关键。
English Abstract
Abstract The problem of cross-seasonal mismatch between power supply and demand is becoming increasingly prominent in high proportion renewable energy generation systems. Relying solely on mature energy storage technologies , such as electrochemical and thermal energy storage , cannot address this challenge. In this paper, salt cavern is utilized for large-scale hydrogen storage , and complements battery and thermal energy storage to achieve multi-time scale power regulation of solar-wind power systems. The optimal combination and capacity parameters of the system are obtained through multi-objective optimization of levelized cost of energy (LCOE), loss of power supply probability (LPSP), and curtailed power amount, and the comprehensive performance is compared with the system without hydrogen devices and the system with hydrogen tanks. Results show that when the power supply reliability is extremely high, the integration of low-cost and large-scale salt cavern hydrogen storage can significantly reduce the installed capacities of power generation and energy storage devices, thereby reducing LCOE and improving power consumption ability. When the annual power demand is fully met, the LCOE of the proposed system is $0.244 /kWh, which is $0.216 /kWh lower than the system with hydrogen tanks, demonstrating a huge economic advantage. While compared to the system without hydrogen devices, the LCOE can be reduced by $0.055/kWh. More importantly, the annual curtailed power can be reduced by 76% under tri-objective optimization. Although salt cavern hydrogen storage technology has advantages in certain power supply scenarios, accelerating the reduction of unit investment costs for electrolyzer and fuel cell is particularly important.
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SunView 深度解读
该研究对阳光电源储能系统架构具有重要启示。盐穴制氢储能可与ST系列PCS和PowerTitan电池储能形成多时间尺度互补调节,解决跨季节供需失配难题。在极高供电可靠性场景下,集成大规模氢储能可显著降低发电和储能装置容量配置,LCOE降低0.055美元/kWh,弃电减少76%。建议阳光电源在光储氢一体化系统中,优化PCS与电解槽/燃料电池的协同控制策略,通过iSolarCloud平台实现多元储能智能调度,并结合GFM控制技术提升系统稳定性,为大规模新能源基地提供完整解决方案。