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基于废油灰的新型可持续定形相变材料在光伏热管理中的表征
Characterization of a novel sustainable shape stabilized phase change material based on oil ash for photovoltaic thermal management
| 作者 | Ahmad Al Miaari · Khaled Own Mohaisen · Radhi Abdullah Lawag · Amir Al Ahm · Hafiz Muhammad Ali |
| 期刊 | Solar Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 292 卷 |
| 技术分类 | 光伏发电技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Preparation of a novel sustainable shape stabilized [phase change material](https://www.sciencedirect.com/topics/earth-and-planetary-sciences/phase-change-materials "Learn more about phase change material from ScienceDirect's AI-generated Topic Pages"). |
语言:
中文摘要
相变材料(PCM)因其在多种应用中实现被动冷却的潜力而日益受到关注,尤其是在光伏(PV)热管理领域。然而,将PCM与光伏组件集成时仍存在若干问题,如泄漏、PCM封装容器的设计、倾角影响以及PCM导热系数较低等问题,这些问题均会影响整体的光伏热管理性能。为解决上述挑战,本研究开发了一种基于燃烧废弃油脂所得油灰的新型可持续定形相变材料(SSPCM),并将其作为RT-42 PCM的载体。该材料旨在提升导热性能,同时消除泄漏风险、倾角依赖性以及对额外PCM封装容器的需求。在本研究中,采用两步真空浸渍法制备了SSPCM,并通过多种表征技术对其热物理性质及稳定性进行了系统分析。结果表明,油灰具有球形且高度多孔的结构,粒径范围为13 µm至50 µm,能够有效吸收并均匀分布PCM。研究考察了不同RT-42 PCM负载量下的性能表现,发现当PCM负载量为总质量的40%时达到最优,此时材料结构稳定且无泄漏现象;若超过该比例则可能出现泄漏问题。此外,测试结果证实PCM在油灰内部分布均匀,且组分之间未发生化学反应。所制备的SSPCM具有71.54 J/g的潜热值和38.1 °C的熔点。更重要的是,材料的导热系数在45 °C条件下从纯PCM的0.19 W/m·K显著提升至0.7352 W/m·K,增强了287%。为验证材料及其性能的长期稳定性,进行了100次熔化-凝固循环实验,结果显示材料在整个过程中无任何泄漏,潜热值和导热系数均保持稳定,证明其具备优异的循环耐久性和长期可靠性。为进一步评估该SSPCM在实际光伏热管理应用中的性能表现,实验测量了模拟太阳辐照下光伏组件发热情况(2瓦热负荷)时,装有SSPCM的散热器基底温度,并与空散热器及仅填充RT-42 PCM的散热器进行对比。结果表明,在加热阶段,采用所开发SSPCM的散热器最高可使基底温度降低4.7 °C,并展现出更快的热量散发能力,相较于空散热器最大温差达4.2 °C,显示出其在光伏系统热管理中的显著应用潜力。
English Abstract
Abstract Phase change material (PCM) are becoming more desired for passive cooling in various applications, especially in photovoltaic (PV) thermal management. However, several issues arise when integrating PCM with PV panels, such as leakage, PCM container design, tilt angle considerations, and PCM low thermal conductivity, which affects the overall PV thermal management process. To address these issues, a novel sustainable shape-stabilized phase change material (SSPCM) based on oil ash derived from burning oils is used as a carrier for RT-42 PCM. This material aims to improve thermal conductivity, eliminate leakage, tilt angle issues, and the need of PCM container. In this study, the SSPCM was prepared using a two-step vacuum impregnation method, and its thermophysical properties and stability were investigated using various characterization techniques. Results showed that oil ash has a spherical, highly porous structure with particle sizes ranging from 13 µm to 50 µm, enabling effective absorption and distribution of PCM. Different RT-42 PCM loadings within the oil ash were examined, and results indicated that the optimal PCM loading is 40 % of the total weight, leading to a stable material with no signs of leakage. However, exceeding this percentage may result in leakage issues. Moreover, the results confirmed the uniform presence of PCM inside the oil ash with no chemical reactions occurring between the components. The SSPCM exhibited a latent heat of 71.54 J/g and a melting point of 38.1 °C. Additionally, the thermal conductivity of the material increased significantly from 0.19 W/m·K to 0.7352 W/m·K at 45 °C, representing a 287 % enhancement. To ensure the stability of the material and its properties, 100 melting-solidification cycles were performed. Results showed no leakage issues or changes in latent heat and thermal conductivity, confirming the material’s long-term reliability. To evaluate the practical performance of the SSPCM in PV thermal management applications, the temperature of a heat sink base exposed to a 2-watt heat load mimicking a PV panel under solar irradiance was measured and compared with an empty heat sink and a heat sink loaded with RT-42 PCM. Results demonstrated that the developed SSPCM reduced the heat sink temperature by a maximum of 4.7 °C during the heating phase and facilitated faster heat dissipation, with a maximum temperature difference of 4.2 °C compared to an empty heat sink.
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SunView 深度解读
该油灰基定形相变材料技术对阳光电源光伏逆变器热管理具有重要价值。材料导热系数提升287%达0.74 W/m·K,熔点38.1°C与SG系列逆变器功率器件工作温区匹配,可优化IGBT/SiC模块散热设计。无泄漏特性适合户外倾斜安装场景,降温4.7°C效果可提升逆变器效率和寿命。该被动冷却方案可与iSolarCloud平台结合,实现温控预测性维护,为大型地面电站和工商业储能系统ST系列PCS的热管理提供创新思路,降低主动散热能耗。