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基于有机朗肯循环的多种集成系统在余热利用下制冷与发电联产的优化与比较分析
Optimization and comparative analysis of various organic Rankine cycle-based integrated systems for cooling and power cogeneration utilizing waste heat
| 作者 | Xiaojing Sun · Linlin Liu · Tong Zhang · Yao Zhao · Yanjun Dai |
| 期刊 | Energy Conversion and Management |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 325 卷 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 GaN器件 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Organic Rankine cycle-based [integrated systems](https://www.sciencedirect.com/topics/engineering/integrated-system "Learn more about integrated systems from ScienceDirect's AI-generated Topic Pages") are optimized and compared. |
语言:
中文摘要
摘要 余热回收对于降低能源消耗和碳排放至关重要。将有机朗肯循环与吸收式制冷、蒸气压缩制冷以及压缩-吸收级联制冷相结合,能够实现从余热中高效联产制冷与电力。然而,现有研究缺乏统一的优化方法、系统的比较框架以及对应用场景的深入分析。本文构建了一种综合集成系统,整合了有机朗肯循环与上述制冷技术的不同运行模式。建立了经济性优化模型,以确定在特定运行模式下集成系统的最优配置和运行参数,并构建了比较框架,用于识别具有最佳经济性能的系统。采用所提出的方法,针对六种不同制冷负荷需求的场景进行了优化与比较分析。结果表明,在500 kW制冷负荷且制冷温度分别为25 °C和−25 °C时,有机朗肯循环与吸收式制冷及压缩-吸收级联制冷集成的系统具有更优的经济性能;相比之下,在5,000 kW制冷负荷或5 °C制冷温度条件下,与蒸气压缩制冷集成的系统仍具有更高的经济优势。此外,本文还分析了制冷能量需求和余热源条件对系统经济性能的影响,并总结了各类系统的适用应用场景。本研究有助于实现基于有机朗肯循环的集成系统的自动化设计并提升其经济性,为工业余热利用提供了有价值的指导。
English Abstract
Abstract Waste heat recovery is crucial for reducing energy consumption and carbon emissions. The integration of organic Rankine cycle with absorption refrigeration, vapor compression refrigeration, and compression-absorption cascade refrigeration enables efficient cooling and power cogeneration from waste heat. However, existing studies lack a unified optimization method, a systematic comparison framework, and thorough application scenarios analysis. Herein, a comprehensive integrated system incorporating operational modes of organic Rankine cycle with these refrigeration technologies is developed. An economic optimization model is formulated to determine the optimal configuration and operating parameters for the integrated system under specified modes. A comparison framework is established to identify the system with the best economic performance. Using the proposed method, optimization and comparative analyses are conducted for six scenarios with distinct cooling energy demands. Results indicate that organic Rankine cycle integrated with absorption refrigeration and compression-absorption cascade refrigeration achieves superior economic performance under 500 kW at 25 °C and −25 °C, respectively. In contrast, integration with vapor compression refrigeration remains more economically advantageous under 5,000 kW or at 5 °C. Additionally, the effects of cooling energy and waste heat source conditions on economic performance are analyzed, and suitable application scenarios for each system are summarized. This research facilitates automatic design of organic Rankine cycle-based integrated systems with enhanced economic performance, providing valuable guidance for industrial waste heat utilization.
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SunView 深度解读
该余热回收与有机朗肯循环集成技术对阳光电源储能系统具有重要参考价值。研究中的经济优化模型和多工况对比框架,可应用于ST系列PCS及PowerTitan储能系统的热管理优化设计。特别是在大型储能电站场景下,电池簇产生的废热可通过类似集成制冷方案实现冷热电联供,提升系统综合能效。该研究的自动化设计方法论可借鉴至iSolarCloud平台,实现储能热管理系统的智能优化配置,降低冷却能耗,提升储能电站经济性和全生命周期收益。