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Thermal conductivity of cementitious composites containing microencapsulated phase change materials

机译:含微胶囊相变材料的水泥基复合材料的导热系数

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摘要

This paper investigates the effects of adding microencapsulated phase change materials (PCM) on the thermal conductivity of cement paste and cement mortar composites. Embedding cementitious composites with microencapsulated PCM has been considered a promising method for increasing the thermal mass of buildings to achieve greater energy efficiency and for reducing the risks of thermal cracking in pavements. Cement paste and cement mortar samples were synthesized with a constant water to cement ratio of 0.45. Both contained microencapsulated PCM with diameter ranging from 17-20 μm, volume fraction up to 30%, and a melting temperature around 24 ℃. The cement mortar also contained quartz grains 150-600 μm in diameter such that the sum of the volume fractions of quartz and microencapsulated PCM was fixed at 55%. All samples were aged for more than 28 days. Their effective density and free moisture content were systematically measured. A guarded hot plate apparatus was designed, assembled, and validated according to the ASTM C177-13 to measure the effective thermal conductivity of the aged specimens of cement paste and cement mortar without and with microencapsulated PCM. Measurements were performed between 10 and 40 ℃, encompassing the entire PCM phase change temperature window. The effective thermal conductivity of both the cement paste and the cement mortar composites was found to be nearly independent of temperature in the range considered. It also decreased as the volume fraction of microencapsulated PCM increased. Finally, excellent agreement was obtained between experimental data and the effective medium approximation derived by Felske (2004) for core-shell-matrix composites. These results can be used to design cementitious composite materials containing microencapsulated PCMs for energy efficient buildings and crack-resistant pavements.
机译:本文研究了添加微囊化相变材料(PCM)对水泥浆和水泥砂浆复合材料导热系数的影响。将胶结复合材料与微囊化PCM一起包埋被认为是增加建筑物的热质量以实现更高的能源效率并降低人行道上热裂风险的一种有前途的方法。合成的水泥浆和水泥砂浆样品的水/水泥比恒定为0.45。两者均包含直径为17-20μm,体积分数高达30%,熔化温度约为24℃的微囊PCM。水泥砂浆还包含直径为150-600μm的石英颗粒,以使石英和微囊化PCM的体积分数之和固定为55%。所有样品均老化28天以上。系统地测量了它们的有效密度和自由水分含量。根据ASTM C177-13设计,组装并验证了带防护的热板设备,以测量不使用微囊化PCM和使用微囊化PCM的水泥浆和水泥砂浆的老化试样的有效导热率。测量在10至40℃之间进行,涵盖了整个PCM相变温度范围。发现水泥浆和水泥砂浆复合材料的有效导热率几乎都与所考虑范围内的温度无关。随着微囊化PCM的体积分数增加,它也降低了。最后,在实验数据和Felske(2004)得出的核-壳-基质复合材料的有效介质近似值之间获得了极好的一致性。这些结果可用于设计水泥复合材料,其中包含用于节能建筑和抗裂路面的微囊化PCM。

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  • 作者单位

    Mechanical and Aerospace Engineering Department, Henry Samueli School of Engineering and Applied Science, University of California, Los Angeles, United States;

    Mechanical and Aerospace Engineering Department, Henry Samueli School of Engineering and Applied Science, University of California, Los Angeles, United States;

    Civil and Environmental Engineering Department, Laboratory for the Chemistry of Construction Materials (LC~2), Henry Samueli School of Engineering and Applied Science, University of California, Los Angeles, United States;

    Civil and Environmental Engineering Department, Laboratory for the Chemistry of Construction Materials (LC~2), Henry Samueli School of Engineering and Applied Science, University of California, Los Angeles, United States ,California Nanosystems Institute (CNSI), Henry Samueli School of Engineering and Applied Science, University of California, Los Angeles, United States;

    Mechanical and Aerospace Engineering Department, Henry Samueli School of Engineering and Applied Science, University of California, Los Angeles, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Thermal conductivity; Phase change materials; Microencapsulated; Cement; Mortar; Core-shell-matrix composites;

    机译:导热系数;相变材料;微囊化;水泥;砂浆;核-壳-基质复合材料;

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