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光伏发电技术
★ 5.0
太阳能热电与制冷联产系统的性能分析与优化
Performance analysis and optimization of a solar-powered system for power and cooling cogeneration
| 作者 | Qing Wang · Minli Yu · Lirong Li |
| 期刊 | Solar Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 292 卷 |
| 技术分类 | 光伏发电技术 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Analyzing a solar-driven structure for power and cooling subsystems [cogeneration](https://www.sciencedirect.com/topics/engineering/cogeneration "Learn more about cogeneration from ScienceDirect's AI-generated Topic Pages"). |
语言:
中文摘要
摘要 为应对环境挑战,实现可持续发展,全球正优先推动能源结构从化石燃料向可再生能源转型。本研究系统探讨了一种用于同时发电与制冷的太阳能驱动联产系统的多维度性能表现。所提出的系统构型集成了抛物槽式太阳能集热器、超临界CO2动力循环、喷射式制冷循环、改进型有机闪蒸循环以及有机朗肯循环。该系统可实现15.6 MW的净输出功率和3.40 MW的制冷负荷,对应的能量效率和㶲效率分别为18.28%和16.35%。经济性分析表明,系统单位时间总产品成本为1468.95美元/小时,投资回收期为4.82年;环境影响评估显示其㶲环境影响率为191.34 Pts/小时。通过参数分析与敏感性分析识别出关键设计变量,并采用多目标粒子群优化算法对系统进行优化。情景I将系统净输出功率提升至16.3 MW,同时使㶲环境影响率降低至167.86 Pts/小时,总产品成本率下降至1268.55美元/小时;情景II实现了15.65 MW的净输出功率,㶲效率提高至16.42%,制冷负荷增至3.75 MW。研究结果验证了该系统在热力学性能、经济可行性以及环境可持续性方面的显著优势。
English Abstract
Abstract Switching from fossil fuels to renewable energy sources to mitigate environmental challenges has become a priority for sustainable development. This study explores the multi-aspect performance of a solar-powered cogeneration system designed for simultaneous power and cooling production. The proposed configuration integrates a parabolic trough solar collector with a supercritical CO 2 unit, an ejector refrigeration cycle, a modified organic flash cycle, and an organic Rankine cycle. The system generates a net output power of 15.6 MW and a cooling load of 3.40 MW, achieving respective energetic and exergetic efficiencies of 18.28 % and 16.35 %. Economic analysis reveals a total product cost rate of 1468.95 $/h, with a payback period of 4.82 years, while environmental evaluation reports an exergoenvironmental impact rate of 191.34 Pts/h. Parametric and sensitivity analyses highlight critical design variables, leading to an optimization process using a multi-objective particle swarm optimizer. Scenario I improves system performance with a net power output of 16.3 MW, reducing the exergoenvironmental impact rate to 167.86 Pts/h and the total product cost rate to 1268.55 $/h. Scenario II achieves a net power output of 15.65 MW, enhances the exergetic efficiency to 16.42 %, and increases the cooling load to 3.75 MW. These results confirm the system’s superior thermodynamic performance, economic viability, and environmental sustainability.
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SunView 深度解读
该太阳能冷热电联供系统对阳光电源光储一体化方案具有重要启示。抛物面槽式集热器与超临界CO2循环的集成思路,可应用于SG系列逆变器与ST系列储能变流器的协同优化设计。系统18.28%的能量效率和4.82年投资回收期验证了多能互补的经济性,为iSolarCloud平台的智慧能源管理算法提供参考。多目标粒子群优化方法可融入PowerTitan储能系统的能量调度策略,实现功率输出与环境影响的动态平衡,推动工商业园区综合能源解决方案的技术升级。