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储能系统技术 ★ 5.0

一种集成太阳能吸收与热能存储的建筑供暖策略

A potential building heating strategy integrating solar radiation absorption and thermal energy storage

语言:

中文摘要

摘要 建筑供暖占能源消耗的很大一部分,导致大量碳排放。本研究提出了一种有前景的供暖策略,通过相变材料(PCMs)将太阳能吸收与热能存储相结合,显著提升室内热舒适性的同时降低能耗。为实现上述目标,开发了一种由CaCl₂·6H₂O和膨胀石墨组成的复合相变材料,该材料具备优异的热存储性能,其太阳能吸收率高达91.4%,能够高效捕获太阳辐射。该复合相变材料被制成板状结构,并集成于建筑墙体中,以评估其热性能。实验结果表明,厚度为10 mm的复合相变材料板安装在试验舱南墙时,热舒适持续时间(DTC)达到4.06小时,比参考舱的0.79小时延长了414%。数值模拟进一步优化了设计参数,结果显示,当相变材料板厚度增至25 mm,并结合朝向为南偏东60°的建筑朝向时,系统性能达到最优,热舒适持续时间可达13.5小时,比10 mm厚的相变材料板延长了233%。此外,该优化设计可使室内温度在上午10:00前达到舒适水平。本研究凸显了基于相变材料的太阳能供暖系统在减少能源消耗方面的潜力,为寒冷气候区建筑供暖提供了一种可持续的解决方案。

English Abstract

Abstract Building heating accounts for a substantial portion of energy consumption, leading to significant carbon emission. This study presents a promising heating strategy that integrates solar radiation absorption with thermal energy storage using phase change materials (PCMs), significantly enhancing indoor thermal comfort while reducing energy consumption. A composite PCM comprised of CaCl 2 ·6H 2 O and expanded graphite was developed to achieve these goals, offering excellent thermal storage properties and a solar absorptance up to 91.4 %, allowing it to efficiently capture solar radiation. The composite PCM was formed into plate structures and incorporated into building walls with the aim of evaluating its thermal performance. Experimental findings show that the composite PCM plate, with a thickness 10 mm and installed on the southern wall of the test chamber, achieved a duration of thermal comfort (DTC) of 4.06 h—414 % longer than the reference chamber, which only achieved 0.79 h. Numerical simulations further optimized the design, revealing that a 25 mm thick PCM plate, paired with a 60° south-by-east building orientation, provided optimal performance. It achieved a DTC of 13.5 h, which is 233 % longer than the 10 mm thick PCM plate. Moreover, this optimized design ensures that the indoor temperature reaches a comfortable level by 10:00 AM. This study highlights the potential of PCM-based solar heating systems to reduce energy consumption and provides a sustainable solution for building heating in cold climates.
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SunView 深度解读

该相变储热技术为阳光电源储能系统提供跨季节热能存储新思路。可与PowerTitan储能系统协同,通过ST系列PCS智能调控,在供暖季将光伏发电转化为热能存储于PCM材料,结合iSolarCloud平台实现建筑热电联供优化调度。91.4%太阳能吸收率与公司1500V高效光伏系统形成互补,为零碳建筑一体化解决方案提供技术储备,拓展储能系统在建筑热管理领域的应用边界。