结晶
胶结(地质)
凝聚力(化学)
材料科学
岩土工程
钠
降水
矿物学
地质学
复合材料
化学工程
冶金
化学
水泥
工程类
气象学
有机化学
物理
作者
Xingchi Ye,Zhigang Cao,Chuan Gu,Yuanqiang Cai,Jun Wang
标识
DOI:10.1139/cgj-2023-0243
摘要
The precipitation and intrusion of sodium chloride into pavement structures is inevitable in coastal regions, which can affect the mechanical properties of the road base courses. To investigate this problem, samples with sodium chloride solution were cured in a thermostatic chamber until they reached the specified states of sodium chloride precipitation within the pores. A critical crystallization degree ( ω c ) was discovered by computerized tomography scan, corresponding to the start of the formation of porous salt crust cementing the soil particles. A series of unsaturated large-scale triaxial shear tests were then conducted under various states of salt crystallization. The results showed that in the early stages of crystallization (i.e., ω < ω c ), the peak stress and internal friction angle decreased with ω because of the coating and lubricating effects of salt powders, while the apparent cohesion remained constant. When ω > ω c , owing to the increasing adsorption and cementation effects of the salt crust, rapid growth was observed for the peak stress, internal friction angle, and apparent cohesion of the road base aggregates. Considering the influence of salt precipitation, a modified shear strength criterion that can predict the shear strength of the salinized road base aggregates was formulated.
科研通智能强力驱动
Strongly Powered by AbleSci AI