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Three-dimensional numerical modeling and simulation of the thermal properties of foamed concrete

机译:泡沫混凝土热力学特性的三维数值模拟与仿真

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摘要

In this paper, a three-dimensional method was developed for modeling the heat transfer of foamed concretes with a large range of densities (300-1700 kg/m~3). A random generation method was extended from two dimensions (2D) to three dimensions (3D) for reproducing the microstructure of foamed concrete. A finite volume method (FVM) was then used to solve the energy transport equations for two phase coupled heat transfer through the porous structure. The effective thermal conductivities (ETCs) of foamed concretes were thus numerically calculated and the 3D predictions were compared with the existing experimental data and other analytical models. The numerical results show that the predicted effective thermal conductivity varies with the lattice number in the third dimension following an exponential relationship, and it needs at least 20 lattices along the third dimension to stabilize the simulation results. In addition, the 3D numerical predictions agree more with the experimental results, since the heat conduction in the third direction is omitted in 2D simulation, leading to the underestimation of effective thermal conductivities prediction in the same boundary conditions. Finally, a correlation was then derived between the results computed with 3D and 2D numerical models.
机译:本文提出了一种三维方法来模拟大密度范围(300-1700 kg / m〜3)的泡沫混凝土的传热。随机生成方法从二维(2D)扩展到三维(3D),用于再现泡沫混凝土的微观结构。然后使用有限体积法(FVM)求解通过多孔结构的两相耦合传热的能量传输方程。因此,对泡沫混凝土的有效导热系数(ETC)进行了数值计算,并将3D预测值与现有的实验数据和其他分析模型进行了比较。数值结果表明,预测的有效导热系数随维数呈指数关系随维数变化,并且沿维至少需要20个晶格才能稳定模拟结果。此外,由于在2D模拟中省略了第三方向的导热,因此3D数值预测与实验结果更加吻合,导致在相同边界条件下低估了有效导热率的预测。最后,然后在使用3D和2D数值模型计算的结果之间得出相关性。

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