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氢能与燃料电池 ★ 5.0

基于太阳能-氢能互补利用的新型复合系统的动态特性与负荷调节策略

Dynamic characteristics and load regulation strategies of a novel combined system based on solar-hydrogen complementary utilization

作者 Yan Suna · Hong-Wei Lia · Di Wangb · Chang-He Duac
期刊 Applied Energy
出版日期 2025年1月
卷/期 第 401 卷
技术分类 氢能与燃料电池
相关度评分 ★★★★★ 5.0 / 5.0
关键词 A novel system integrating energy storage power and H2 production is proposed.
语言:

中文摘要

本文提出了一种基于太阳能-氢能互补利用技术的新型复合系统,首次将氢气轮机、热电发生器和质子交换膜电解槽集成到太阳能塔式-超临界CO2布雷顿循环系统中。文中首次提出了以氢气轮机替代传统太阳能塔式系统中储热系统的概念。为应对太阳能的间歇性问题,提出了三种灵活运行模式:纯氢模式、太阳能-氢能互补模式和纯太阳能模式。建立了所提出系统的集成动态模型,开展了详细的年性能分析和敏感性分析,提出了针对该系统在三种运行模式下动态性能的综合评价方法,并实施了负荷调节策略研究。结果表明,该系统的产氢速率在7月份最高,而耗氢速率在12月份最低。所提系统在纯氢模式下响应速度最快,最小响应时间为45秒;太阳能-氢能互补模式的响应时间最长,为330秒。优先调节空气质量流量(适用于纯氢模式)以及直接法向辐照度(适用于太阳能-氢能互补模式和纯太阳能模式),可使所提系统具备更大的负荷调节范围。本研究为基于太阳能与氢能互补利用的复合系统动态特性及负荷调节策略的研究奠定了理论基础。

English Abstract

Abstract In this paper, a novel combined system based on solar energy‑hydrogen complementary utilization technology is developed, which first integrates hydrogen gas turbine, thermoelectric generator and proton exchange membrane electrolyzer into the solar power tower-supercritical CO 2 Brayton cycle system. The concept of replacing the thermal storage system in conventional solar power tower system with a hydrogen gas turbine is first proposed. Three flexible operating modes include pure hydrogen mode, solar energy‑hydrogen complementary mode and pure solar mode are proposed to address solar intermittency. An integrated dynamic model of the proposed system is established. The detailed annual performance analysis and sensitivity analysis are carried out. A comprehensive evaluation method for the proposed system dynamic performance under three operating modes is proposed. And the load regulation strategies are carried out. Results present that the hydrogen production rate of the proposed system is the highest in July, and the hydrogen consumption rate is the lowest in December. The proposed system has the fastest response speed in pure hydrogen mode, with a minimum response time of 45 s. The solar energy‑hydrogen complementary mode has the maximum response time with 330 s. Prioritizing the adjustment of air mass flow rate (for the pure hydrogen mode) and direct normal irradiance (for the solar energy‑hydrogen complementary mode and pure solar mode) can make the proposed system have a larger load adjustment range. This work lays the theoretical foundation for the research of combined system dynamic characteristics and load regulation strategies based on the complementary utilization of solar energy and hydrogen.
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SunView 深度解读

该太阳能-氢能互补系统对阳光电源ST储能系统和SG光伏逆变器产品线具有重要启示。系统提出的三种灵活运行模式(纯氢、互补、纯光伏)与阳光电源GFM/GFL控制技术和VSG虚拟同步发电机技术高度契合,可优化PowerTitan储能系统的动态响应特性。45-330秒的响应时间范围为PCS功率控制策略提供参考。氢储能替代热储能的创新思路可拓展ST系列在可再生能源消纳场景的应用,结合iSolarCloud平台实现氢-光-储多能互补的智能调度与负荷优化,提升系统整体灵活性和经济性。