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光伏发电技术 储能系统 ★ 5.0

基于太阳能全光谱利用的新型绿色氢-电-热三联产系统的热力学分析与优化

Thermodynamic analysis and optimization of a novel green hydrogen-electricity-heat tri-generation system based on full spectrum utilization of solar energy

作者 Xuhong Huang · Pei Lu · Xianglong Luo · Yingzong Liang · Jianyong Chen · Zhi Yang · Rongjun Wu · Ying Chen
期刊 Energy Conversion and Management
出版日期 2025年1月
卷/期 第 327 卷
技术分类 光伏发电技术
技术标签 储能系统
相关度评分 ★★★★★ 5.0 / 5.0
关键词 太阳能光谱分离 光热混合系统 氢电热三联供系统 超临界CO2布雷顿循环 太阳能全光谱利用
语言:

中文摘要

当前关于太阳光谱分频光伏-热能混合系统的研究面临依赖化石能源以及太阳能到产品转换效率低的问题。为解决这些问题,本文提出了一种新型氢-电-热三联产系统,该系统将光伏发电与超临界CO2 Brayton循环相结合,实现了太阳能全光谱的高效利用。建立了所提出系统的热力学分析与优化模型。提出了该系统的三种运行模式,以满足不同产品输出需求(氢-电-热、电-热、氢-热)。对所提出系统与参考系统进行了对比分析,结果表明,所提出系统的太阳能制氢效率和太阳能到产品总效率分别提高了0.98%–11.63%和2.35%–41.61%。在最优左截止波长下,该系统的最大太阳能制氢效率达到49.8%。所提出系统的三种运行模式的太阳能到产品总效率分别为77.7%、80.2%和71.2%。本研究为高效利用太阳能并实现零碳氢气生产提供了一种新途径。

English Abstract

Abstract Current research on solar spectrum splitting Photovoltaic-Thermal hybrid systems face issues such as dependence on fossil energy and low efficiency in solar-to-product. To address these issues, this paper proposes a novel hydrogen-electric-thermal tri-generation system that integrates photovoltaic cells power generation with a supercritical CO 2 Brayton cycle, which achieves efficient utilization of the full spectrum of solar energy. A thermodynamic analysis and optimization model of the proposed system is established. The three modes of the proposed system are proposed to satisfy the requirements of different productions (hydrogen-electricity-heat, electricity-heat, and hydrogen-heat). A comparison between the proposed system and reference system is conducted, and the results indicate that the solar-to-hydrogen efficiency and solar-to-product efficiency of the proposed system are increased by 0.98%-11.63% and 2.35%-41.61%, respectively. The maximum solar-to-hydrogen efficiency of the proposed system at the optimal left cutoff wavelength is 49.8%. The solar-to-product efficiency of the three operating modes of the proposed system is 77.7%, 80.2%, and 71.2%, respectively. This study offers a novel approach to efficiently utilizing solar energy and achieving zero-carbon hydrogen production.
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SunView 深度解读

该光伏-热电联产制氢系统对阳光电源ST储能系统和SG光伏逆变器产品线具有重要启示。论文提出的全光谱利用技术可与我司1500V光伏系统和MPPT优化技术结合,提升光伏发电效率。超临界CO2布雷顿循环的余热利用思路可应用于PowerTitan储能系统的热管理优化。三种运行模式(氢-电-热)的灵活切换策略,可为我司iSolarCloud平台的智能调度算法提供参考,特别是在光伏制氢场景下实现能源多元化输出,助力零碳能源解决方案落地。