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基于三水合醋酸钠和聚乙二醇的新型有机-无机低共熔相变材料用于热回收的制备及热性能研究

Preparation and Thermal Performance Study of a Novel Organic-Inorganic Eutectic Phase Change Material Based on Sodium Acetate Trihydrate and Polyethylene Glycol for Heat Recovery.

作者信息

Sun Wanchun, Xu Xuyan, Zhang Tao, Wu Zhijiang, Xu Yansheng

机构信息

School of Energy and Automotive Engineering, Shunde Polytechnic, Foshan 528300, China.

Department of Industrial Engineering, Tsinghua University, Beijing 100084, China.

出版信息

Materials (Basel). 2025 Jan 3;18(1):164. doi: 10.3390/ma18010164.

Abstract

A novel organic-inorganic eutectic phase change material (PCM) based on sodium acetate trihydrate (SAT) and polyethylene glycol (PEG) was developed to meet the needs of heat recovery and building heating. Three kinds of PEG with different molecular weights were selected to form organic-inorganic eutectic PCM with SAT. The thermal properties of three series of SAT-PEG eutectic PCM were compared based on DSC results, focusing on the impact of PEG addition on the phase change temperature and enthalpy of SAT, as well as the melting uniformity. The inhibitory effects of two nucleating agents on the supercooling of SAT-PEG eutectic PCM were systematically investigated. The effect of PEG on the crystallization behavior of SAT was studied using a metallographic microscope. To evaluate the thermal reliability of the SAT-PEG eutectic PCM, 600 cycles of melting-solidification experiments were conducted. Experimental results show that SAT can form eutectic PCMs with PEG200, PEG600, and PEG6000, respectively, with high enthalpy and excellent melting uniformity. The phase change temperature ranged from 55 °C to 60 °C and the enthalpy was as high as 250-280 kJ/kg. The results of the cooling curves show that 10 wt% tetrasodium pyrophosphate decahydrate (TPD) can reduce the supercooling degree to less than 1 °C. Significantly, all three series of SAT-PEG eutectic PCMs exhibit exceptional thermal reliability after 600 cycles of melting-solidification, with shifts in the phase change temperatures and enthalpies of less than 4%. XRD diffraction patterns showed that SAT, PEG, and TPD were physically mixed without a chemical reaction to form new substances. Microscopic images reveal that the addition of PEG preserves the original needle-shaped crystal morphology of SAT while reducing its crystal size. The rapid formation of small crystals can provide more nucleation points and expedite crystallization, thereby enhancing the heat release capabilities of the PCM.

摘要

为满足热回收和建筑供暖需求,研发了一种基于三水合醋酸钠(SAT)和聚乙二醇(PEG)的新型有机-无机共晶相变材料(PCM)。选择了三种不同分子量的PEG与SAT形成有机-无机共晶PCM。基于差示扫描量热法(DSC)结果比较了三个系列SAT-PEG共晶PCM的热性能,重点关注PEG添加对SAT相变温度和焓的影响以及熔化均匀性。系统研究了两种成核剂对SAT-PEG共晶PCM过冷的抑制作用。使用金相显微镜研究了PEG对SAT结晶行为的影响。为评估SAT-PEG共晶PCM的热可靠性,进行了600次熔化-凝固实验。实验结果表明,SAT可分别与PEG200、PEG600和PEG6000形成具有高焓和优异熔化均匀性的共晶PCM。相变温度范围为55℃至60℃,焓高达250 - 280 kJ/kg。冷却曲线结果表明,10 wt%的十水焦磷酸四钠(TPD)可将过冷度降低至1℃以下。值得注意的是,经过600次熔化-凝固循环后,所有三个系列的SAT-PEG共晶PCM均表现出出色的热可靠性,相变温度和焓的变化小于4%。X射线衍射(XRD)图谱表明,SAT、PEG和TPD是物理混合,未发生化学反应形成新物质。微观图像显示,PEG的添加保留了SAT原来的针状晶体形态,同时减小了其晶体尺寸。小晶体的快速形成可以提供更多的成核点并加快结晶速度,从而增强PCM的放热能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cdf/11721845/cb1d011d5f66/materials-18-00164-g001.jpg

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