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Comparison of natural convection flows under VHTR type conditions modeled by both the conservation and incompressible forms of the Navier-Stokes equations

机译:用Navier-Stokes方程的守恒形式和不可压缩形式建模的VHTR型条件下自然对流流动的比较

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摘要

This paper illustrates a comparative study to analyze the physical differences between numerical simulations obtained with both the conservation and incompressible forms of the Navier-Stokes equations for natural convection flows in simple geometries. The purpose of this study is to quantify how the incompressible flow assumption (which is based upon constant density advection, divergence-free flow, and the Boussinesq gravitational body force approximation) differs from the conservation form (which only assumes that the fluid is a continuum) when solving flows driven by gravity acting upon density variations resulting from local temperature gradients. Driving this study is the common use of the incompressible flow assumption in fluid flow simulations for nuclear power applications in natural convection flows subjected to a high heat flux (large temperature differences). A series of simulations were conducted on two-dimensional, differentially heated rectangular geometries and modeled with both hydrodynamic formulations. From these simulations, the selected characterization parameters of maximum Nusselt number, average Nusselt number, and normalized pressure reduction were calculated. Comparisons of these parameters were made with available benchmark solutions for air with the ideal gas assumption at both low and high heat fluxes. Additionally, we generated specific force quantities and velocity and temperature distributions to provide a basis for further analysis. The simulations and analysis were then extended to include helium at the Very High Temperature gas-cooled Reactor (VHTR) normal operating conditions. Our results show that the consequences of incorporating the incompressible flow assumption in high heat flux situations may lead to unrepresentative results. The results question the use of the incompressible flow assumption for simulating fluid flow in an operating nuclear reactor, where large temperature variations are present.
机译:本文说明了一项比较研究,以分析在简单几何形状中自然对流流动的同时采用守恒和不可压缩形式的Navier-Stokes方程获得的数值模拟之间的物理差异。这项研究的目的是量化不可压缩流量假设(基于恒定密度对流,无散度流量和Boussinesq重力体力近似)与守恒形式(仅假设流体是连续介质)有何不同)求解由重力驱动的流,该流作用于局部温度梯度导致的密度变化。推动这项研究的是流体动力模拟中不可压缩流量假设在核动力应用中的普遍使用,其中核动力应用在自然对流中经受高热通量(大温差)。在二维,不同加热的矩形几何形状上进行了一系列模拟,并用两种流体动力学公式建模。从这些模拟中,计算出所选的最大Nusselt数,平均Nusselt数和归一化压力降低的表征参数。这些参数与可用的基准解决方案进行了比较,这些基准解决方案是在低热通量和高热通量情况下均以理想气体为假设的空气。此外,我们生成了特定的力数量以及速度和温度分布,从而为进一步分析提供了基础。然后将模拟和分析扩展到包括超高温气冷堆(VHTR)正常运行条件下的氦气。我们的结果表明,在高热通量情况下采用不可压缩流量假设的结果可能导致结果不具代表性。结果质疑使用不可压缩流量假设来模拟运行中的核反应堆中存在大温度变化的流体流动。

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  • 来源
    《Nuclear Engineering and Design》 |2010年第6期|p.1371-1385|共15页
  • 作者单位

    Fuels Modeling and Simulation, Nuclear Fuels and Materials Division, Idaho National Laboratory, P.O. Box 1625, Idaho Falls, ID 83415-3860, United States;

    Fuels Modeling and Simulation, Nuclear Fuels and Materials Division, Idaho National Laboratory, P.O. Box 1625, Idaho Falls, ID 83415-3860, United States;

    Fuels Modeling and Simulation, Nuclear Fuels and Materials Division, Idaho National Laboratory, P.O. Box 1625, Idaho Falls, ID 83415-3860, United States;

    Fuels Modeling and Simulation, Nuclear Fuels and Materials Division, Idaho National Laboratory, P.O. Box 1625, Idaho Falls, ID 83415-3860, United States;

    Fuels Modeling and Simulation, Nuclear Fuels and Materials Division, Idaho National Laboratory, P.O. Box 1625, Idaho Falls, ID 83415-3860, United States;

    Fuels Modeling and Simulation, Nuclear Fuels and Materials Division, Idaho National Laboratory, P.O. Box 1625, Idaho Falls, ID 83415-3860, United States;

    Fuels Modeling and Simulation, Nuclear Fuels and Materials Division, Idaho National Laboratory, P.O. Box 1625, Idaho Falls, ID 83415-3860, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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