You Mengjie, Yin Xiaosan, Sun Yuzhou, Wu Hairong, Li Jimin, Zhou Xiangming
School of Architecture and Engineering, Zhongyuan University of Technology, Zhengzhou 451197, China.
Henan Mechanics and Engineering Structures Engineering Research Center, Zhengzhou 451197, China.
Materials (Basel). 2024 Dec 7;17(23):6005. doi: 10.3390/ma17236005.
To investigate the micro-mechanism of the erosion of hydrated calcium silicate (C-S-H gel) in a sulfate environment, a solid-liquid molecular dynamics model of C-S-H gel/sodium sulfate was developed. This model employs molecular dynamics methods to simulate the transport processes between C-S-H gel and corrosive ions at concentrations of 5%, 8%, and 10% sodium sulfate (NaSO), aiming to elucidate the interaction mechanism between sulfate and C-S-H gel. The micro-morphology of the eroded samples was also investigated using scanning electron microscopy (SEM). The findings indicate that the adsorption capacity of C-S-H for ions significantly increases with higher concentrations of NaSO solution. Notably, the presence of sulfate ions facilitates the decalcification reaction of C-S-H, leading to the formation of swollen gypsum and AFt (ettringite). This process results not only in the hydrolysis of the C-S-H gel but also in an increase in the diffusion coefficients of Na and Ca, thereby exacerbating the erosion. Additionally, the pore surfaces of the C-S-H structure exhibited strong adsorption of Na, and as the concentration of NaSO solution increased, Na+ was more stably adsorbed onto the C-S-H pore surfaces via Na-O bonds. The root-mean-square displacement curves of water molecules were significantly higher than those of SO42-, Na and Ca, which indicated that SO42- could co-penetrate and migrate with water molecules faster compared with other ions in the solution containing SO42-, resulting in stronger corrosion and hydrolysis effects on the C-S-H structure.
为了研究水合硅酸钙(C-S-H凝胶)在硫酸盐环境中的侵蚀微观机制,建立了C-S-H凝胶/硫酸钠的固液分子动力学模型。该模型采用分子动力学方法模拟了C-S-H凝胶与浓度为5%、8%和10%的硫酸钠(NaSO)腐蚀离子之间的传输过程,旨在阐明硫酸盐与C-S-H凝胶之间的相互作用机制。还使用扫描电子显微镜(SEM)研究了侵蚀样品的微观形态。研究结果表明,随着NaSO溶液浓度的升高,C-S-H对离子的吸附能力显著增强。值得注意的是,硫酸根离子的存在促进了C-S-H的脱钙反应,导致形成膨胀的石膏和AFt(钙矾石)。这个过程不仅导致C-S-H凝胶的水解,还导致Na和Ca的扩散系数增加,从而加剧了侵蚀。此外,C-S-H结构的孔表面对Na表现出强烈的吸附作用,并且随着NaSO溶液浓度的增加,Na+通过Na-O键更稳定地吸附在C-S-H孔表面。水分子的均方根位移曲线明显高于SO42-、Na和Ca的均方根位移曲线,这表明在含有SO42-的溶液中,SO42-与水分子相比能够更快地共同渗透和迁移,对C-S-H结构产生更强的腐蚀和水解作用。