← 返回
光伏发电技术
★ 5.0
通过界面增强实现高效光热转换、储能及优异形状稳定性的复合相变材料
Composite phase change materials with efficient solar-thermal energy conversion, storage and superior shape stability by interfacial enhancement
语言:
中文摘要
摘要 相变材料在热管理领域具有广泛应用,但由于光热转换效率低和易泄漏等问题,其在新能源转换与存储领域的应用受到限制。本研究通过溶液共混、定向冷冻、化学气相沉积处理和真空浸渍方法制备了一种垂直取向的聚乙烯醇/MXene/正二十八烷复合相变材料。MXene的引入拓宽了材料的光吸收光谱,增加了复合相变材料的表面粗糙度,有助于形成额外的热传导通路并提高负载能力。通过化学气相沉积法对材料进行甲基三乙氧基硅烷改性后,显著增强了聚乙烯醇/MXene气凝胶与正二十八烷之间的相互作用,进一步提升了材料的负载能力、光热转换效率、抗泄漏性能以及热导率。所获得的含50 wt% MXene的复合相变材料(PM50Oc)实现了高达236 J/g的相变焓,97.1%的优异光热转换效率,仅0.7%的极低泄漏率,出色的热稳定性(经过2000次循环后相变焓仅下降4.7%),以及0.42 W/(m·K)的热导率。在模拟房屋供暖系统中,在1000 W/m²光照强度下,PM50Oc可使水温(初始25 °C)和空气温度(初始0 °C)分别维持在约60 °C和22 °C;当移除光源后,PM50Oc通过释放潜热有效延缓了室内温度的下降,其冷却速率仅为自然冷却的1/6。该研究为开发高性能复合相变材料提供了一种新策略,尤其在改善抗泄漏性能方面具有重要意义。
English Abstract
Abstract Phase change materials have broad applications in thermal management, but their applications in new energy conversion and storage are limited due to low solar-thermal conversion efficiency and leakage issues. This study fabricates a vertically oriented poly(vinyl alcohol) /MXene/N-octacosane composite phase change materials via solution blending, directional freezing, chemical vapor deposition treating, and vacuum impregnating methods. The integration of MXene broadens the light absorption spectrum and increases the surface roughness of composite phase change materials , facilitating the formation of additional thermal conductive pathways and enhancing the loading capacity. Following modification with methyltriethoxysilane via chemical vapor deposition method, the interaction between the poly(vinyl alcohol)/MXene aerogels and N-octacosane was significantly strengthened, further improving loading capacity, solar-thermal conversion efficiency, anti-leakage properties, and thermal conductivity. The resulting composite phase change materials, comprising 50 wt% MXene (PM50Oc), achieved a high enthalpy of 236 J/g, an impressive solar-thermal conversion efficiency of 97.1 %, a minimal leakage rate of 0.7 %, exceptional thermal stability (with only a 4.7 % decrease in enthalpy after 2000 cycles) and a thermal conductivity of 0.42 W/(m·K). In a simulated house heating system, the PM50Oc maintained water temperatures (25 °C) and air temperatures (0 °C) near 60 °C and 22 °C, respectively, under a light intensity of 1000 W/m 2 . Upon removal of the light source, the PM50Oc effectively delayed the decrease in indoor temperature by releasing latent heat, with a cooling rate of 1/6 that of natural cooling. This research presents a new strategy to developing high-performance composite phase change materials, particularly those with improved anti-leakage property.
S
SunView 深度解读
该复合相变材料技术对阳光电源储能系统具有重要应用价值。其97.1%的光热转换效率和236 J/g高焓值可优化PowerTitan储能柜的热管理系统,解决电池模组散热难题。垂直取向结构与MXene增强的0.42 W/(m·K)热导率,可应用于ST系列PCS功率器件散热设计,提升SiC/IGBT模块可靠性。相变材料的防泄漏特性和2000次循环稳定性,适配户用储能系统全生命周期需求。结合iSolarCloud平台温控算法,可实现储能系统智能热管理,延长设备寿命并提升安全性能。