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Microencapsulated phase change materials for enhancing the thermal performance of Portland cement concrete and geopolymer concrete for passive building applications

机译:微胶囊化相变材料,以提高波特兰水泥混凝土和地聚合物混凝土的热性能,用于被动建筑应用

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摘要

Concretes with a high thermal energy storage capacity were fabricated by mixing microencapsulatedphase change materials (MPCM) into Portland cement concrete (PCC) and geopolymer concrete (GPC).The effect of MPCM on thermal performance and compressive strength of PCC and GPC were investigated. It was found that the replacement of sand by MPCM resulted in lower thermal conductivity and higher thermal energy storage, while the specific heat capacity of concrete remained practically stable when the phase change material (PCM) was in the liquid or solid phase. Furthermore, the thermal conductivity of GPC as function of MPCM concentration was reduced at a higher rate than that of PCC. The power consumption needed to stabilize a simulated indoor temperature of 23°C was reduced after the addition of MPCM. GPC exhibited better energy saving properties than PCC at the same conditions.A significant loss in compressive strength was observed due to the addition of MPCM to concrete.However, the compressive strength still satisfies the mechanical European regulation (EN 206-1, compressive strength class C20/25) for concrete applications. Finally, MPCM-concrete provided a good thermal stability after subjecting the samples to 100 thermal cycles at high heating/cooling rates.
机译:通过将微胶囊相变材料(MPCM)掺入波特兰水泥混凝土(PCC)和地质聚合物混凝土(GPC)中来制备具有高储热能力的混凝土。研究了MPCM对PCC和GPC的热性能和抗压强度的影响。发现用MPCM代替沙子导致较低的热导率和较高的热能存储,而当相变材料(PCM)为液相或固相时,混凝土的比热容量实际上保持稳定。此外,与PCC相比,GPC的导热系数以MPCM浓度的函数降低了。添加MPCM之后,降低了稳定模拟室内温度23°C所需的功耗。在相同条件下,GPC具有比PCC更好的节能性能。由于在混凝土中添加了MPCM,可观察到抗压强度的显着降低,但是抗压强度仍满足欧洲机械法规(EN 206-1,抗压强度等级C20 / 25)。最后,在高加热/冷却速率下对样品进行100次热循环后,MPCM混凝土提供了良好的热稳定性。

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