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Experimental investigation on thermal properties and thermal performance enhancement of octadecanol/expanded perlite form stable phase change materials for efficient thermal energy storage

机译:十八烷醇/膨胀珍珠岩形成稳定相变材料以有效储热的热学性质和增强热性能的实验研究

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Octadecanol (OC) was employed as phase change material (PCM) to compound with expanded perlite (EP) because of its relatively high latent heat capacity (245.97 kJ/kg). OC/EP composites were prepared via vacuum impregnation method in this paper. The microstructure, chemical components and interactions that between two materials were characterized via Scanning Electron Microscope (SEM), X-Ray Diffraction (XRD) and Fourier Transform Infrared Spectroscopy (FTIR). The leakage-proof properties of OC within the composites were investigated and the leakage phenomena were weakened by adding expanded graphite (EG) with mass fractions of 5%, 10% and 15%. The mass fraction of OC maintains 60% without any leakage after adding EG (mass fraction of 15%). Latent heat capacity and phase change temperature were tested via Differential Scanning Calorimeter (DSC). Latent heat capacity of 60% OC/EP/15EG is 140.20 kJ/kg, and phase change temperature is 59.00 degrees C. The thermal conductivity of the composites was tested, and the variation tendency was linearly fitted. The thermal storage and release tests were performed to evaluate thermal performance of the composites. And the efficiency of the heat storage and release of OC/EP composites were improved significantly after filling EG (mass fraction of 15%) into the interspace that is among the particles of EP. (C) 2018 Elsevier Ltd. All rights reserved.
机译:十八烷醇(OC)被用作相变材料(PCM)与膨胀珍珠岩(EP)的化合物,因为它的潜热容量较高(245.97 kJ / kg)。本文采用真空浸渍法制备了OC / EP复合材料。通过扫描电子显微镜(SEM),X射线衍射(XRD)和傅里叶变换红外光谱(FTIR)表征了两种材料之间的微观结构,化学成分和相互作用。研究了复合材料中OC的防漏性能,并通过添加质量分数为5%,10%和15%的膨胀石墨(EG)来减弱泄漏现象。加入EG后,OC的质量分数保持60%,没有任何泄漏(质量分数为15%)。通过差示扫描量热仪(DSC)测试潜热容量和相变温度。 60%OC / EP / 15EG的潜热容量为140.20kJ / kg,相变温度为59.00℃。测试了复合材料的热导率,并且线性地拟合了变化趋势。进行热存储和释放测试以评估复合材料的热性能。将EG(质量分数为15%)填充到EP颗粒之间的空隙中后,OC / EP复合材料的储热和释放效率得到了显着提高。 (C)2018 Elsevier Ltd.保留所有权利。

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