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Development of high performance PCM cement composites for passive solar buildings

机译:用于被动太阳能建筑的高性能PCM水泥复合材料的开发

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Solar thermal energy can be stored in passive solar buildings using either sensible heat storage materials or latent heat storage materials. Structural-functional integrated building materials with integrated thermal energy storage can be developed by compositing phase change materials (PCMs) with building materials. In this study, high performance cementitious composites were developed using microencapsulated PCM (MPCM), nanosilica (NS) and carbon fiber (CF). The mechanical properties, microstructure, thermal conductivity and thermal storage capacity of the MPCM cement composites (M-CCs) were studied. The results showed that, compared with cement paste with MPCM only, the mechanical strength of the M-CC increased with increasing NS and CF content. Significant improvement in early age strength of up to 58% was observed. The thermal conductivity of the composites generally decreased with increasing NS content. However, the presence of CF improved the thermal conductivity of the composites by up to 17.8%, from 0.669 to 0.788 W/(mK). The room model test and infrared thermal image analysis both demonstrated that the presence of CF could substantially improve the heat exchange efficiency of the M-CC. It was concluded that the structural and functional benefits of the cementitious composites can be enhanced by the synergetic effects of MPCM, NS and CF. (C) 2019 Elsevier B.V. All rights reserved.
机译:太阳能热能可以使用可用的蓄热材料或潜热储存材料储存在被动太阳能建筑中。具有集成热能存储的结构功能综合建筑材料可以通过用建筑材料合成相变材料(PCM)来开发。在该研究中,使用微胶囊化的PCM(MPCM),纳米硅(NS)和碳纤维(CF)开发出高性能水泥复合材料。研究了MPCM水泥复合材料(M-CCS)的机械性能,微观结构,导热率和热存储容量。结果表明,与仅具有MPCM的水泥浆料相比,M-CC的机械强度随着NS和CF含量的增加而增加。观察到早期强度高达58%的显着改善。随着NS含量的增加,复合材料的导热率通常降低。然而,CF的存在将复合材料的导热率提高至17.8%,从0.669到0.788W /(MK)。房间模型试验和红外热图像分析均证明了CF的存在可以显着提高M-CC的热交换效率。得出结论是,通过MPCM,NS和CF的协同效应,可以增强水泥复合材料的结构和功能益处。 (c)2019 Elsevier B.v.保留所有权利。

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