材料科学
多孔性
本构方程
水分
复合材料
磁导率
联轴节(管道)
相对湿度
微型多孔材料
流离失所(心理学)
湿度
耐久性
多孔介质
变形(气象学)
机械
压缩(物理)
大体积混凝土
开裂
质量守恒
结构工程
透气比表面积
刚度
岩土工程
固化(化学)
有限元法
动量(技术分析)
一致性(知识库)
孔隙水压力
水泥
连续介质力学
数学模型
弹性(物理)
混合理论
机械负荷
作者
Ye Tian,Yu Liu,Guoyi Zhang,Xin Xu,Ruoyi Zhao,Mingyue Du,Bei Li,Jin Chen,Hongjing Xue,Qing Cai
标识
DOI:10.1061/jmcee7.mteng-21152
摘要
This study establishes a novel thermo-hygro-mechanical coupling model to analyze load effects on temperature and humidity transmission in early-age concrete, marking the first integration of solid-phase displacement into mass balance equations and quantifying the load-porosity-permeability coupling mechanism. By incorporating momentum balance, mechanical constitutive laws, and thermal-hydro strain relations, the model explicitly addresses porosity variations under loading, adjusts intrinsic permeability coefficients, and resolves the influence of solid-phase deformation on liquid/gas mass transfer. Experimental and numerical results reveal that external loading induces an instantaneous 1%–2% increase in relative humidity, with peak values reached within 4–5 h postloading, while temperature variations remain predominantly governed by environmental conditions. Notably, axial compression reduces porosity by redistributing pore water, increasing saturation, and decelerating moisture transport. The model demonstrates that humidity-load coupling dominates early-age concrete behavior, whereas temperature–load interactions are negligible. These findings provide quantitative insights into pore structure evolution under mechanical stress, offering a refined framework for optimizing curing protocols and durability assessments in structural applications.
科研通智能强力驱动
Strongly Powered by AbleSci AI