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首页> 外文期刊>Computers and Geotechnics >Natural Convection Of Compressible And Incompressible Gases In Undeformable Porous Media Under Cold Climate Conditions
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Natural Convection Of Compressible And Incompressible Gases In Undeformable Porous Media Under Cold Climate Conditions

机译:寒冷气候条件下不可变形多孔介质中可压缩和不可压缩气体的自然对流

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A numerical model for convective heat and mass transport of compressible or incompressible gas flows with soil-water phase change is presented. In general, the gaseous phase is considered as compressible and the model accounts for adiabatic processes of compression heating and expansion cooling. The inherently compressible gaseous phase may nevertheless be considered as incompressible by adopting the Oberbeck-Boussinesq approximations. The numerical method used to solve the equations that describe natural convection is based on a Galerkin finite element formulation with adaptive mesh refinement and dynamic time step control. As most existing numerical studies have focused on the behavior of incompressible fluids, model substantiation examines the influence of fluid compressibility on two-widely used benchmarks of steady-state convective heat and mass transport. The relative importance of the effect of pressure-compressibility cooling is shown to increase as the thermal gradient approaches the magnitude of the adiabatic gradient. From these results, it may be concluded that pore-air compressibility cannot be neglected in medium to large-sized enclosures at small temperature differentials. After demonstrating its ability to solve fairly complex transient problems, the model is used to further our understanding of the thermal behavior of the toe drain at the LA2-BSU dam in the province of Quebec, Canada.
机译:建立了具有土壤-水相变化的可压缩或不可压缩气流对流传热和传质的数值模型。通常,气相被认为是可压缩的,该模型考虑了压缩加热和膨胀冷却的绝热过程。但是,通过采用Oberbeck-Boussinesq近似可以将固有可压缩气相视为不可压缩。用于求解描述自然对流方程的数值方法是基于具有自适应网格细化和动态时间步长控制的Galerkin有限元公式。由于大多数现有的数值研究都集中在不可压缩流体的行为上,因此模型验证研究了流体可压缩性对稳态对流传热和传质两个广泛使用的基准的影响。随着热梯度接近绝热梯度的大小,压力-压缩性冷却作用的相对重要性显示出增加。从这些结果可以得出结论,在小到温差的中型到大型外壳中,不能忽略孔隙空气的可压缩性。在证明了其解决相当复杂的瞬态问题的能力之后,该模型将用于进一步了解加拿大魁北克省LA2-BSU大坝脚趾排水的热行为。

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