Šavija Branko, Zhang Hongzhi, Schlangen Erik
Microlab, Delft University of Technology, 2628 CN Delft, The Netherlands.
Materials (Basel). 2017 Jul 27;10(8):863. doi: 10.3390/ma10080863.
Excessive cracking can be a serious durability problem for reinforced concrete structures. In recent years, addition of microencapsulated phase change materials (PCMs) to concrete has been proposed as a possible solution to crack formation related to temperature gradients. However, the addition of PCM microcapsules to cementitious materials can have some drawbacks, mainly related to strength reduction. In this work, a range of experimental techniques has been used to characterize the microcapsules and their effect on properties of composite cement pastes. On the capsule level, it was shown that they are spherical, enabling good distribution in the material during the mixing process. Force needed to break the microcapsules was shown to depend on the capsule diameter and the temperature, i.e., whether it is below or above the phase change temperature. On the cement paste level, a marked drop of compressive strength with increasing PCM inclusion level was observed. The indentation modulus has also shown to decrease, probably due to the capsules themselves, and to a lesser extent due to changes in porosity caused by their inclusion. Finally, a novel micro-cube splitting technique was used to characterize the tensile strength of the material on the micro-meter length scale. It was shown that the strength decreases with increasing PCM inclusion percentage, but this is accompanied by a decrease in measurement variability. This study will contribute to future developments of cementitious composites incorporating phase change materials for a variety of applications.
对于钢筋混凝土结构而言,过度开裂可能是一个严重的耐久性问题。近年来,有人提出在混凝土中添加微胶囊相变材料(PCM),作为解决与温度梯度相关的裂缝形成问题的一种可能方案。然而,在胶凝材料中添加PCM微胶囊可能存在一些缺点,主要与强度降低有关。在这项研究中,使用了一系列实验技术来表征微胶囊及其对复合水泥浆体性能的影响。在胶囊层面,结果表明它们呈球形,在搅拌过程中能够在材料中良好分布。结果表明,打破微胶囊所需的力取决于胶囊直径和温度,即温度是低于还是高于相变温度。在水泥浆体层面,观察到随着PCM掺入量的增加,抗压强度显著下降。压痕模量也显示出下降,这可能是由于胶囊本身,在较小程度上是由于它们的掺入导致孔隙率的变化。最后,采用一种新颖的微立方体劈裂技术来表征材料在微米长度尺度上的抗拉强度。结果表明,强度随着PCM掺入百分比的增加而降低,但同时测量变异性也有所降低。这项研究将有助于含相变材料的胶凝复合材料在各种应用中的未来发展。