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基于太阳能塔式集热器的热电联产集成系统性能评估

Performance assessment of solar tower collector based integrated system for the cogeneration of power and cooling.

作者信息

Siddiqui Mohd Asjad, Alsaduni Ibrahim

机构信息

Department of Mechanical Engineering, Faculty of Engineering and Technology, Jamia Millia Islamia, New Delhi, 110025, India.

Department of Electrical Engineering, College of Engineering, Majmaah University, Al-Majmaah, 11952, Saudi Arabia.

出版信息

Heliyon. 2024 Oct 30;10(21):e39993. doi: 10.1016/j.heliyon.2024.e39993. eCollection 2024 Nov 15.

Abstract

Integrating solar energy systems is an essential measure in advancing worldwide sustainability objectives and offers a sustainable, environmentally friendly approach to reducing greenhouse gas emissions and pollutants. To this direction, the proposed system integrating solar tower collector, supercritical CO, organic Rankine cycle, and single effect absorption refrigeration cycles shows potential as an efficient and sustainable solution for meeting energy and cooling demands. A detailed thermodynamic evaluation has been performed to gain valuable understanding of the energy and exergy performance, enabling the assessment of thermal and exergy efficiencies, exergy destructions, and heat losses. Results show that this study found the thermal efficiency of the proposed system to be 47.35 % for R245fa, 48.59 % for R123, and 52.32 % for toluene. In addition, the exergy efficiency was obtained at 40.99 % for R245fa, 42.41 % for R123, and 46.67 % when toluene is used as a working fluid. With all investigated working fluids of organic Rankine cycle, toluene achieved the highest thermal and exergy efficiency of the proposed power-cooling cogeneration system, while R245fa achieved the lowest energetic and exergetic performance. Among the various ORC working fluids investigated under operating conditions, toluene demonstrated the highest turbine power output (3202 kW), whereas R245fa exhibited the lowest turbine power output (2804 kW). The refrigeration output for all ORC working fluids studied was found to be 988.8 kW. Additionally, the primary contributor of exergy destruction rate in the proposed system was determined to be the solar tower receiver, contributing 73.24 %, 67.80 %, and 66.19 % to the total for the toluene, R123, and R245fa working fluids, respectively.

摘要

集成太阳能系统是推进全球可持续发展目标的一项重要措施,为减少温室气体排放和污染物提供了一种可持续、环保的方法。在此方向上,所提出的集成太阳能塔集热器、超临界二氧化碳、有机朗肯循环和单效吸收制冷循环的系统,显示出作为满足能源和制冷需求的高效且可持续解决方案的潜力。已进行了详细的热力学评估,以深入了解能量和㶲性能,从而能够评估热效率和㶲效率、㶲损失及热损失。结果表明,本研究发现对于R245fa,所提出系统的热效率为47.35%;对于R123,为48.59%;对于甲苯,为52.32%。此外,当以R245fa为工质时,㶲效率为40.99%;以R123为工质时,为42.41%;以甲苯为工质时,为46.67%。在有机朗肯循环所有研究的工质中,甲苯在所提出的热电联产系统中实现了最高的热效率和㶲效率,而R245fa的能量和㶲性能最低。在所研究的运行条件下的各种有机朗肯循环工质中,甲苯表现出最高的涡轮功率输出(3202千瓦),而R245fa的涡轮功率输出最低(2804千瓦)。所研究的所有有机朗肯循环工质的制冷输出均为988.8千瓦。此外,所提出系统中㶲破坏率的主要贡献者被确定为太阳能塔接收器,分别占甲苯、R123和R245fa工质总量的73.24%、67.80%和66.19%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d37f/11639371/db13253cc179/gr1.jpg

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