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光伏光热与吸附式脱盐系统耦合的动态数值模拟及性能评估
Dynamic numerical modeling and performance assessment of a hybrid photovoltaic thermal collector adsorption desalination system for sustainable water-energy nexus
| 作者 | Mohamed Ghazy · Mohamed E. Zay · Shafiqur Rehman · Kashif Irsh · Eslam Mohamed Ibrahim · A.S.A.Moham · Ehab S.Ali · Ahmed S.Alsaman · Ridha Ben Mansour · Rached Ben Mansour · Ahmed A. Askalany |
| 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 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Performance of a solar adsorption [desalination system](https://www.sciencedirect.com/topics/engineering/desalination-system "Learn more about desalination system from ScienceDirect's AI-generated Topic Pages") is numerically studied. |
语言:
中文摘要
摘要 能源和淡水资源短缺的全球性挑战在人口持续增长和气候变化的推动下日益加剧。由于吸附式脱盐技术能够利用低品位热能,因此作为一种可持续解决方案,受到广泛关注,可用于应对全球不断增长的淡水和能源需求。本研究展示了在埃及索哈杰市气象条件下,一种光伏光热(PVT)与吸附式脱盐系统(ADS)耦合的混合系统全年运行性能。采用MATLAB与TRNSYS软件联合进行数值建模,对系统的运行参数进行全年评估,并验证系统性能。研究表明,PVT-ADS系统优于传统的吸附式脱盐系统。在夏季月份,PVT系统的发电效率比未冷却的标准光伏系统高出15.80%。此外,从光伏组件回收的热量使ADS系统的产水率达到6.50 m³/吨-天,制冷功率达到156 W/kg;相比之下,独立运行的ADS系统分别为5.50 m³/吨-天和143 W/kg。此外,该混合PVT/吸附式脱盐系统在利用废热或太阳能真空管集热器驱动ADS的情况下,可使淡水生产成本分别降低约20%和13%。综上所述,本研究结果表明,光伏光热-吸附脱盐混合系统在同时解决干旱和半干旱地区能源与水资源短缺问题方面具有巨大潜力。
English Abstract
Abstract The global challenges of energy and freshwater shortages are becoming more pronounced, driven by the relentless march of population growth and climate change. Adsorption desalination techniques have gained significant attention as a sustainable solution to address the increasing global demand for fresh water and energy because of their ability to utilize low-grade thermal energy. This study presents the annual performance of a hybrid photovoltaic thermal (PVT) with adsorption desalination system (ADS) under the weather conditions of Sohag City, Egypt. Numerical modeling is employed using MATLAB coupled with TRNSYS software to annually evaluate the system’s operational parameters and validate system performance. The study highlights that the PVT-ADS outperforms traditional adsorption desalination systems. During the summer months, the PVT electrical efficiency was 15.80 % better than that of a standard PV system without cooling. Additionally, the heat captured from the PV module enhanced the ADS water production rate to 6.50 m 3 /ton-day and the cooling power to 156 W/kg, respectively. In comparison, the standalone ADS obtained 5.50 m 3 /ton-day and 143 W/kg, respectively. Moreover, the hybrid PVT/adsorption desalination system could reduce the freshwater cost by around 20 % and 13 % in the case of driving the ADS system by waste heat or solar evacuated tube solar collector. Conclusively, the findings of the study highlight the hybrid PV/T-ADS’s potential to simultaneously address energy and water scarcity in arid and semi-arid regions.
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SunView 深度解读
该PVT-吸附式海水淡化系统研究对阳光电源光储一体化方案具有重要启示。系统通过PV组件余热回收提升15.8%发电效率,与我司SG系列逆变器的热管理优化方向高度契合。其能量梯级利用理念可应用于ST储能系统的热管理设计,将电池热量用于淡化或制冷,提升系统综合能效。建议结合iSolarCloud平台开发光储淡一体化解决方案,针对中东北非等缺水地区打造水电联产系统,拓展PowerTitan在海水淡化场景的应用,实现能源-水资源协同优化,提升干旱地区项目经济性20%以上。