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集成相变材料的空气源热泵蓄热单元实验与数值评估
Experimental and numerical assessment of thermal energy storage unit with PCM integrated to air source heat pump for enhancement of load shifting
| 作者 | Çağatay Yıldız · Müslüm Arıcı · Mustafa Seçilmiş · Dong Lidb |
| 期刊 | Energy Conversion and Management |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 345 卷 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Experimental and numerical study on TES unit integrated with ASHP. |
语言:
中文摘要
摘要 本文开展了对集成于空气源热泵(ASHP)系统的蓄热(TES)单元的实验与数值评估。该蓄热单元由一个水箱及内部增设的若干管路构成,管路中填充有蓄热材料,即纯水或相变材料(PCM)。在实验研究中,采用月桂酸作为相变材料,并将其结果与使用水作为蓄热材料的情况进行对比。实验在四种不同的加热负荷条件下进行,范围从3.1 kW至12 kW。此外,基于实验数据建立了相应的数值模型。在数值模拟中,考虑了包括实验所用月桂酸在内的四种不同相变材料,并对其热性能进行了数值评估,同时与以水作为蓄热材料的情形进行了比较。根据获得并分析的实验数据,使用相变材料可使加热时间减少1.6%至16.1%;然而,采用月桂酸时,空气源热泵的性能提升了18.5%,相应地,负荷转移指数(LSI)最高提高了10.1%。数值模拟结果表明,选用合适的相变材料可能导致加热时间延长3.6%,但可使负荷转移指数从64.9%提升至68.9%,相较于使用水的情况更为优越。此外,提高相变材料的有效导热系数可实现潜热储存量的100%利用,从而使加热时间进一步缩短23.5%,并将负荷转移指数由68.9%显著提升至82.3%。
English Abstract
Abstract Within the present work, experimental and numerical assessment of a thermal energy storage (TES) unit integrated to air source heat pump (ASHP) were conducted. The TES unit consists of a water tank and additional tubes inside, which are filled with TES material, namely pure water or phase change material (PCM). In the experimental work, lauric acid was used as PCM and the results were compared to the case of using water as TES material. The experiments were conducted for four different heating loads ranging from 3.1 to 12 kW. Besides, a numerical model was established based on experimental data. In the numerical simulations, four different PCMs including the lauric acid used in the experiments were considered, and their thermal performances were numerically evaluated and compared to that of water as a TES material. According to the experimental data obtained and analyzed, using PCM reduced the heating time from 1.6 % to 16.1 %. Nevertheless, the ASHP performance was improved by 18.5 % using lauric acid. Relatedly, the load shifting index ( LSI ) was enhanced by up to 10.1 %. Numerical simulations revealed that using appropriate PCM can result in 3.6 % longer heating time and can increase LSI from 64.9 % to 68.9 %, compared to water. Besides, increasing effective thermal conductivity of PCM can allow using 100 % of the latent heat stored, resulting in an enhancement of 23.5 % in heating time and an improvement of LSI from 68.9 % to 82.3 %.
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SunView 深度解读
该相变储热技术对阳光电源ST系列储能系统具有重要参考价值。研究表明PCM材料可提升负荷转移指数达10.1%,与我司PowerTitan储能系统的削峰填谷功能高度契合。通过优化热导率可实现82.3%的LSI,为ST系列PCS在热电联供场景的应用提供技术启发。建议将相变储热与电化学储能耦合,结合iSolarCloud平台智能调度,可显著提升用户侧储能系统经济性,特别适用于工商业冷热电三联供项目,增强阳光电源在综合能源管理领域的竞争力。