Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139-4307, United States.
Langmuir. 2012 Aug 7;28(31):11422-32. doi: 10.1021/la301738p. Epub 2012 Jul 30.
Water within pores of cementitious materials plays a crucial role in the damage processes of cement pastes, particularly in the binding material comprising calcium-silicate-hydrates (C-S-H). Here, we employed Grand Canonical Monte Carlo simulations to investigate the properties of water confined at ambient temperature within and between C-S-H nanoparticles or "grains" as a function of the relative humidity (%RH). We address the effect of water on the cohesion of cement pastes by computing fluid internal pressures within and between grains as a function of %RH and intergranular separation distance, from 1 to 10 Å. We found that, within a C-S-H grain and between C-S-H grains, pores are completely filled with water for %RH larger than 20%. While the cohesion of the cement paste is mainly driven by the calcium ions in the C-S-H, water facilitates a disjoining behavior inside a C-S-H grain. Between C-S-H grains, confined water diminishes or enhances the cohesion of the material depending on the intergranular distance. At very low %RH, the loss of water increases the cohesion within a C-S-H grain and reduces the cohesion between C-S-H grains. These findings provide insights into the behavior of C-S-H in dry or high-temperature environments, with a loss of cohesion between C-S-H grains due to the loss of water content. Such quantification provides the necessary baseline to understand cement paste damaging upon extreme thermal, mechanical, and salt-rich environments.
水在胶凝材料的孔隙中起着至关重要的作用,特别是在包含钙硅水合物(C-S-H)的粘结材料中。在这里,我们采用巨正则蒙特卡罗模拟研究了在环境温度下,C-S-H 纳米颗粒或“颗粒”内和颗粒间水的性质,作为相对湿度(%RH)的函数。我们通过计算%RH 和颗粒间分离距离为 1 到 10 Å 时,颗粒内和颗粒间的流体内部压力,研究了水对水泥浆凝聚力的影响。我们发现,在 C-S-H 颗粒内和 C-S-H 颗粒之间,当相对湿度大于 20%时,孔隙完全充满了水。虽然水泥浆的凝聚力主要由 C-S-H 中的钙离子驱动,但水在 C-S-H 颗粒内促进了不连续性行为。在 C-S-H 颗粒之间,根据颗粒间的距离,受限水会降低或增强材料的凝聚力。在非常低的相对湿度下,水的损失会增加 C-S-H 颗粒内的凝聚力,并降低 C-S-H 颗粒之间的凝聚力。这些发现为了解 C-S-H 在干燥或高温环境中的行为提供了深入的见解,由于失去了水分,C-S-H 颗粒之间的凝聚力会丧失。这种量化提供了理解水泥浆在极端热、机械和富含盐的环境中受损的必要基础。