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Trans-scale multi-physics coupling finite element model of concrete during freezing and thawing

机译:晶级多物理耦合有限元模型混凝土冻结与解冻

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This paper presents a trans-scale finite element model based on hydraulic-thermal-mechanical coupling equations of porous medium to simulate the behavior of concrete during freezing and thawing. Unlike previous models that regard concrete as homogeneous material, this paper aims to establish a macro-size concrete model with detailed micro-structure, the aggregates (mm) and air voids (mu m) are randomly generated by the Monte Carlo method, and the interfacial transition zones (mu m) with random thickness are built around the aggregates. The capillary pores (nm) of concrete is expressed by the relationship between the percentage of frozen ice and the radius of capillary pore. The simulation results reveal the mechanism of air voids protecting the concrete from freezing and thawing damage, and the mechanical field shows the freezing and thawing damage occurs preferentially at the interfacial transition zone, because the stress concentration due to the irregular distribution of aggregates and water resistance of aggregates. The temperature boundary conditions were also varied to study the influence of the temperature change rate on hydrostatic pressure and volume stress. The effect of the cement paste's pore structure, including the spacing of air voids, on the ability of concrete to resist freezing and thawing is presented.
机译:本文介绍了一种基于多孔介质液压热机械耦合方程的跨尺度有限元模型,在冷冻和解冻过程中模拟混凝土的行为。与以前的模型相比,将混凝土视为均匀材料,本文旨在建立具有详细的微结构的宏观混凝土模型,聚集体(MM)和空隙(MU M)由蒙特卡罗方法随机产生,以及随机厚度的界面过渡区域(mu m)围绕聚集体构建。混凝土的毛细孔孔(NM)表示通过冷冻冰和毛细血管孔径的百分比与毛细血管半径之间的关系表示。仿真结果揭示了保护混凝土防冻和解冻损伤的空气空隙机制,并且机械场显示冷冻和解冻损伤优先发生在界面过渡区,因为由于聚集体和耐水性不规则分布导致的应力集中聚集体。还可以改变温度边界条件,以研究温度变化率对静压压力和体积应力的影响。提出了水泥浆料孔结构的效果,包括空隙的间距,在混凝土中抵抗冷冻和解冻的能力。

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