Enhancing s-CO2 Brayton Power Cycle Efficiency in Cold Ambient Conditions Through Working Fluid Blends.

IF 2 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Entropy Pub Date : 2025-07-11 DOI:10.3390/e27070744
Paul Tafur-Escanta, Luis Coco-Enríquez, Robert Valencia-Chapi, Javier Muñoz-Antón
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Abstract

Supercritical carbon dioxide (s-CO2) Brayton cycles have emerged as a promising technology for high-efficiency power generation, owing to their compact architecture and favorable thermophysical properties. However, their performance degrades significantly under cold-climate conditions-such as those encountered in Greenland, Russia, Canada, Scandinavia, and Alaska-due to the proximity to the fluid's critical point. This study investigates the behavior of the recompression Brayton cycle (RBC) under subzero ambient temperatures through the incorporation of low-critical-temperature additives to create CO2-based binary mixtures. The working fluids examined include methane (CH4), tetrafluoromethane (CF4), nitrogen trifluoride (NF3), and krypton (Kr). Simulation results show that CH4- and CF4-rich mixtures can achieve thermal efficiency improvements of up to 10 percentage points over pure CO2. NF3-containing blends yield solid performance in moderately cold environments, while Kr-based mixtures provide modest but consistent efficiency gains. At low compressor inlet temperatures, the high-temperature recuperator (HTR) becomes the dominant performance-limiting component. Optimal distribution of recuperator conductance (UA) favors increased HTR sizing when mixtures are employed, ensuring effective heat recovery across larger temperature differentials. The study concludes with a comparative exergy analysis between pure CO2 and mixture-based cycles in RBC architecture. The findings highlight the potential of custom-tailored working fluids to enhance thermodynamic performance and operational stability of s-CO2 power systems under cold-climate conditions.

通过工作流体混合物提高冷环境条件下s-CO2布雷顿动力循环效率。
超临界二氧化碳(s-CO2)布雷顿循环由于其紧凑的结构和良好的热物理特性,已经成为一种很有前途的高效发电技术。然而,在寒冷的气候条件下(如格陵兰岛、俄罗斯、加拿大、斯堪的纳维亚半岛和阿拉斯加),由于靠近流体的临界点,它们的性能会显著下降。本研究通过加入低临界温度添加剂来制备二氧化碳基二元混合物,研究了在零下环境温度下再压缩布雷顿循环(RBC)的行为。测试的工作流体包括甲烷(CH4)、四氟甲烷(CF4)、三氟化氮(NF3)和氪(Kr)。模拟结果表明,与纯CO2相比,富含CH4-和cf4的混合物可以实现高达10个百分点的热效率提高。含nf3的混合物在中等寒冷的环境中可以产生稳定的性能,而基于kr的混合物可以提供适度但一致的效率提高。在压缩机进口温度较低时,高温回热器(HTR)成为主要的性能限制部件。当使用混合物时,调温器电导(UA)的最佳分布有利于增加HTR的尺寸,确保在较大的温差下有效的热回收。该研究的结论是在RBC建筑中对纯二氧化碳和基于混合物的循环进行比较分析。研究结果强调了定制工作流体在寒冷气候条件下提高s-CO2动力系统热力学性能和运行稳定性的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Entropy
Entropy PHYSICS, MULTIDISCIPLINARY-
CiteScore
4.90
自引率
11.10%
发文量
1580
审稿时长
21.05 days
期刊介绍: Entropy (ISSN 1099-4300), an international and interdisciplinary journal of entropy and information studies, publishes reviews, regular research papers and short notes. Our aim is to encourage scientists to publish as much as possible their theoretical and experimental details. There is no restriction on the length of the papers. If there are computation and the experiment, the details must be provided so that the results can be reproduced.
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