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光伏发电技术
★ 4.0
采用改进型太阳能吸热器的高温超临界二氧化碳聚光太阳能电站性能优化
Performance optimization of high-temperature supercritical carbon dioxide concentrating solar power plant with an improved solar receiver
| 作者 | Chuanchang Li · Yubing Tao · S.Li · K.JDan |
| 期刊 | Energy Conversion and Management |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 336 卷 |
| 技术分类 | 光伏发电技术 |
| 相关度评分 | ★★★★ 4.0 / 5.0 |
| 关键词 | Improved solar receiver for [solar power tower](https://www.sciencedirect.com/topics/engineering/solar-power-tower "Learn more about solar power tower from ScienceDirect's AI-generated Topic Pages") system is proposed. |
语言:
中文摘要
提高太阳能吸热器中工质出口温度是提升聚光太阳能系统发电循环热效率的重要措施。然而,随着温度升高,吸热器的热效率会显著下降,从而不可避免地导致系统发电效率降低。本研究提出了一种改进型太阳能吸热器结构,并建立了完整的计算模型,用于研究采用超临界CO2发电循环的聚光太阳能系统的性能。改进型与传统型太阳能吸热器的对比结果表明,在720°C的工作温度下,改进型吸热器可显著减少热损失,使热效率从80.34%提升至89.61%。将改进型吸热器集成到聚光太阳能系统中,分析了运行参数对系统性能的影响,并通过正交试验和遗传算法对系统性能进行了优化。结果表明,分流比对发电效率的影响最为显著,其次为最低压力、熔盐出口温度和再热压力。与原始系统相比,本研究所提出的方案可使聚光太阳能系统的发电效率从29.20%提高至34.23%。
English Abstract
Abstract Improving the outlet temperature of working fluid in solar receiver is an important measure to improve the thermal efficiency of power cycle used in concentrating solar power system. However, the thermal efficiency of solar receiver is sharply reduced with temperature increasing, which inevitably causes the power generation efficiency of system decreasing. In the present study, an improved structure of solar receiver is proposed and an integral computational model is established to investigate the performance of concentrating solar power system with supercritical CO 2 power cycle. The comparison results between the improved and the conventional solar receivers show that the improved solar receiver can significantly reduce heat loss and improve the thermal efficiency from 80.34% to 89.61% at the working temperature of 720 °C. The improved solar receiver is integrated into the concentrating solar power system to analyze the effects of working parameters on system performance. And the system performance is optimized by orthogonal experiment and genetic algorithms . The results show the split ratio has the most significant effect on power generation efficiency, followed by minimum pressure, molten salt outlet temperature and reheat pressure. Compared to the original system, the power generation efficiency of the concentrating solar power system can be improved from 29.20% to 34.23% by the present work.
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SunView 深度解读
该超临界CO2光热发电技术对阳光电源储能系统具有重要参考价值。研究中采用的正交试验与遗传算法优化方法,可应用于ST系列PCS的多参数协同优化,提升系统效率。超临界工质的高温高效特性启发PowerTitan储能系统在热管理策略上的创新,特别是功率分配比优化思路可借鉴至多机并联场景。该研究将发电效率从29.20%提升至34.23%的优化路径,为iSolarCloud平台开发光储热联合调度算法提供理论支撑,助力构建更高效的新能源综合解决方案。