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通过布雷顿循环与跨临界二氧化碳循环的太阳能驱动集成实现可持续发电:全面的3E(能量、㶲和㶲环境)评估

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

作者信息

Khan Yunis, Raman Roshan, Said Zafar, Caliskan Hakan, Hong Hiki

机构信息

Department of Mechanical Engineering Delhi Technological University Delhi 110042 India.

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

出版信息

Glob Chall. 2023 Dec 20;8(2):2300223. doi: 10.1002/gch2.202300223. eCollection 2024 Feb.

Abstract

Solar 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 CO 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 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.

摘要

在其他聚光太阳能发电技术中,太阳能塔式发电技术具有很强的大规模发电潜力。因此,有必要开发一种新型高效的电力转换系统来利用太阳能塔式发电系统。在当前的研究中,提出了一种新型联合循环用于太阳能塔式发电的应用。布雷顿循环的预压缩配置用作顶部循环,其中氦气作为工质。跨临界CO₂循环用作底部循环以利用废热。使用计算技术工程方程求解器从火用、能量和火用环境的角度对所提出的系统进行了研究。此外,还进行了参数分析以检查不同变量对系统性能的影响。结果表明,在联合循环最佳温度800℃、直射光辐射强度850W/m²和压缩机压力比2.278的条件下,整个装置的优化热效率和火用效率分别为31.59%和33.12%。然而,火用稳定性因子和火用环境影响指数分别为0.5952和0.6801。所提出的系统在组件较少的情况下比先前的研究表现更好。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e4b4/10962476/4f390c0c4422/GCH2-8-2300223-g003.jpg

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