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A novel phase-change cement composite for thermal energy storage : fabrication, thermal and mechanical properties

机译:一种用于储热的新型相变水泥复合材料:制造,热和机械性能

摘要

Facing upon the increasingly severe energy crisis, one of the key issues for reducing the building energy consumption is to pursue high-performance thermal energy storage technologies based on phase-change materials. In this study, a novel cement composite incorporated with flaky graphite-doped microencapsulated phase-change materials (FGD-MPCMs) was developed. Various techniques, such as field emission-scanning electron microscopy (FE-SEM), optical microscopy (OM), X-ray diffraction (XRD), differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA) were used to analyse the composite structure and thermal performances. The results indicate that the spherical microcapsules are well dispersed in the cement matrix. When combined within the cement, the thermal stability of the microcapsules was highly improved, and the inclusion of greater amounts of FGD-MPCMs further increased the latent heat of the composite. The mechanical properties of the cement composites were affected with the increase of FGD-MPCMs dosage and the porosity of the composites. In spite of this, the compressive strength and flexural strength of the cement composite with 30% FGD-MPCM could still reach to as high as 14.2 MPa and 4.1 MPa, respectively. Results from the infrared thermography and the model room test suggested that the composite filled with FGD-MPCMs is capable of reducing indoor temperature fluctuation and exhibits good potential for application in buildings to enhance energy savings and thermal comfort.
机译:面对日益严峻的能源危机,减少建筑能耗的关键问题之一是寻求基于相变材料的高性能热能存储技术。在这项研究中,开发了一种新型的掺有片状石墨掺杂微囊化相变材料(FGD-MPCM)的水泥复合材料。使用多种技术,例如场发射扫描电子显微镜(FE-SEM),光学显微镜(OM),X射线衍射(XRD),差示扫描量热法(DSC)和热重分析(TGA)来分析复合结构和热性能。结果表明球形微囊很好地分散在水泥基质中。当结合在水泥中时,微胶囊的热稳定性得到了极大的改善,并且加入大量的FGD-MPCM进一步提高了复合材料的潜热。 FGD-MPCMs用量的增加和复合材料的孔隙率影响了水泥复合材料的力学性能。尽管如此,含30%FGD-MPCM的水泥复合材料的抗压强度和抗弯强度仍可能分别高达14.2 MPa和4.1 MPa。红外热成像和模型室测试的结果表明,填充有FGD-MPCM的复合材料能够减少室内温度波动,并具有在建筑中应用的潜力,可增强节能效果和热舒适性。

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