单相矩形热虹吸管的计算流体动力学模拟

Tri Nguyen, E. Merzari
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引用次数: 1

摘要

浮力驱动的流动在各种工程应用中广泛存在。这种流动已经在理论上、实验上和数值上进行了非常详细的研究。然而,热虹吸的流体动力学不稳定性和流动逆转仍在积极研究中。这种不稳定性的存在限制了这种装置用于衰变热去除的有效性。传统上对自然对流环的稳定性分析仅限于一维计算,认为当环的半径与管道半径之比远大于1时,流动将是一维的。然而,对环面环内流动的精确速度测量表明,流动具有三维效应。作者以前的工作表明,这些结构可以在热虹吸管中看到。本文旨在利用现代CFD方法研究热虹吸管内的三维流动。本文主要研究矩形热虹吸管。特别地,我们使用谱元代码Nek5000进行了一系列高保真模拟,以研究矩形热虹吸管中流动的稳定性行为。我们将结果与热那亚L2设施的现有实验数据进行了比较。我们将详细检查生成的流结构。此外,在过去的许多作者已经证明,热虹吸的整体行为强烈地依赖于边界条件(bc)。模拟活动是用不同的bc来调查和证实这种效果。特别地,用Dirichlet, Neumann和Robin bc对加热器和散热器进行了模拟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computational Fluid Dynamics Simulation of a Single-Phase Rectangular Thermosiphon
Buoyancy-driven flows are widespread in diverse engineering applications. Such flows have been studied in great detail theoretically, experimentally, and numerically. However, the fluid-dynamic instabilities and flow reversals of thermosiphon are still actively investigated. The presence of such instabilities limits the effectiveness of such devices for decay heat removal. Traditionally the stability analysis of natural convection loops has been confined to one-dimensional calculations, on the argument that the flow would be mono-dimensional when the ratio between the radius of the loop and the radius of the pipe is much larger than 1. Nevertheless, accurate velocity measurements of the flow in toroidal loops have shown that the flow presents three-dimensional effects. Previous works of the authors have shown that these structures can be seen in thermosiphons. In this paper, we aim to use modern CFD methods to investigate the three-dimensional flow in thermosiphons. This paper focuses on rectangular thermosiphons. In particular, we perform a series of high-fidelity simulations using the spectral element code Nek5000 to investigate the stability behavior of the flow in a rectangular thermosiphon. We compare the results with available existing experimental data from the L2 facility in Genoa. We examine in detail the flow structures generated. Moreover, in the past various authors have demonstrated that the overall behavior of the thermosiphon depends strongly on the boundary conditions (BCs). The simulation campaign was carried out with different BCs to investigate and confirm this effect. In particular, simulations with Dirichlet, Neumann and Robin BCs for heater and sink were performed.
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