Sustainable Power Generation Through Solar‐Driven Integration of Brayton and Transcritical CO2 Cycles: A Comprehensive 3E (Energy, Exergy, and Exergoenvironmental) Evaluation

Author:

Khan Yunis1,Raman Roshan12,Said Zafar34,Caliskan Hakan5ORCID,Hong Hiki6

Affiliation:

1. Department of Mechanical Engineering Delhi Technological University Delhi 110042 India

2. Department of Multidisciplinary Engineering The NorthCap University Gurugram Haryana 122017 India

3. Department of Sustainable and Renewable Energy Engineering University of Sharjah Sharjah 27272 UAE

4. Department of Industrial and Mechanical Engineering Lebanese American University (LAU) Byblos 36 Lebanon

5. Department of Mechanical Engineering Faculty of Engineering and Natural Sciences Usak University Usak 64200 Turkey

6. Department of Mechanical Engineering Kyung Hee University Yongin 17104 Republic of Korea

Abstract

AbstractSolar power tower technology has strong potential among the other concentration solar power techniques for large power generation. Therefore, it is necessary to make a new and efficient power conversion system for utilizing the solar power tower system. In present research, a novel combined cycle is proposed to generate power for the application of the solar power tower. The pre‐compression configuration of the Brayton cycle is used as a topping cycle in which helium is taken as the working fluid. The transcritical CO2 cycle is used as bottoming cycle for using the waste heat. The proposed system is investigated based on exergy, energy, and exergoenvironmental point of view using computational technique engineering equation solver. Also, the parametric analysis is carried out to check the impact of the different variables on the system performance. It is concluded that the overall plant's optimized thermal and exergy efficiencies are obtained as 31.59% and 33.12%, respectively, at 800 °C optimum temperature of combined cycle and 850 W m−2 of direct normal irradiation and 2.278 of compressor pressure ratio. However, exergetic stability factor and exergoenvironmental impact index are observed as 0.5952 and 0.6801 respectively. The present proposed system performs better than the previous studies with fewer components.

Publisher

Wiley

Subject

Multidisciplinary

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Performance evaluation of absorption cooling system for air conditioning-based novel trigeneration system using solar energy;Journal of the Brazilian Society of Mechanical Sciences and Engineering;2024-05-12

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