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储能系统技术
★ 5.0
集成外部热
热能与冷能)源的焦耳-布雷顿循环卡诺电池多能系统热力学研究
| 作者 | Jiaxing Huang · Yao Zhao · Jian Song · Kai Wang · Peiwang Zhu · Bingchi Liu · Peifeng Sun |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 377 卷 |
| 技术分类 | 储能系统技术 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | [Carnot batteries](https://www.sciencedirect.com/topics/engineering/carnot-battery "Learn more about Carnot batteries from ScienceDirect's AI-generated Topic Pages") integrated with multi-grade heat and cold sources are proposed. |
语言:
中文摘要
摘要 电-热转换工作模式意味着卡诺电池可通过根据能量需求调度和转换不同形式的能量载体,具备转变为多能管理系统的能力。本文建立了基于焦耳-布雷顿循环的卡诺电池多能系统的热力学模型,并在此基础上提出了两种利用外部多品位热能与冷能的转换与利用方法,以应对能量需求的变化。文中讨论了热源与冷源温度、吸热量与吸冷量、工质质量流量以及放电持续时间等关键参数对系统电效率、㶲效率及性能系数的影响。结果表明,当系统仅集成热源时,卡诺电池多能系统的电效率可提升至68.8%–78.0%;而当系统同时集成热源与冷源时,电效率可达113.9%–115.2%。此外,通过增加工质质量流量和延长放电持续时间的方法,此类系统可在冷热电联供模式下实现与多个热源和冷源的集成。进一步地,本文还针对中国某大型能源枢纽评估了该系统的工程技术可行性,其性能系数、㶲效率以及二氧化碳减排速率分别达到119.3%、85.1%和94.3吨/小时。卡诺电池多能系统在多能综合利用领域具有足够的灵活性,展现出发展成为城市或区域智慧能源枢纽的巨大潜力。
English Abstract
Abstract The electro-thermal conversion working mode implies that Carnot batteries have the potential to transform into multi-energy management systems by scheduling and converting different energy vectors according to energy demands. In this paper, a thermodynamic model of Joule-Brayton cycle Carnot battery multi-energy systems is established, based on which two methods of conversion and utilisation of external multi-grade heat and cold are proposed to respond to changes in energy demand. The effects of key parameters such as heat and cold source temperatures, the amount of absorbed heat and cold energy, working fluid mass flow rate and discharge duration on the performance of electricity efficiency, exergy efficiency and coefficient of performance are discussed. The results show that the electricity efficiency of the Carnot battery multi-energy system can be increased to 68.8%–78.0% when the system integrates heat sources only, and to 113.9%–115.2% when the system integrates both heat and cold sources. Additionally, the methods of increasing the working fluid mass flow rate and extending discharge duration allow such systems to integrate with multiple heat and cold sources in combined cooling, heating and power mode. Furthermore, the technical feasibility of such systems is also evaluated for a large energy hub in China, with the coefficient of performance, exergy efficiency and reduced CO 2 emissions rate reaching 119.3%, 85.1% and 94.3 t/h, respectively. The Carnot battery multi-energy system possesses sufficient flexibility in the domain of multi-energy utilisation, demonstrating its potential to evolve into smart energy hubs for cities or districts.
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SunView 深度解读
该焦耳-布雷顿循环卡诺电池多能源系统研究对阳光电源ST系列储能变流器及PowerTitan储能系统具有重要启示。通过整合外部冷热源,系统电效率可提升至68.8%-115.2%,为储能系统拓展冷热电三联供功能提供理论依据。建议结合iSolarCloud平台开发多能源协同调度算法,在工业园区、数据中心等场景实现储能系统从单一电力调峰向综合能源管理中心演进,提升系统经济性和碳减排效益,契合阳光电源智慧能源解决方案战略方向。