熔合包层管汇收缩区的三维MHD压降相关性构建及流动表征

IF 1.9 3区 工程技术 Q1 NUCLEAR SCIENCE & TECHNOLOGY
Yuchen Jiang, Sergey Smolentsev
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引用次数: 0

摘要

入口和出口歧管是核聚变反应堆金属液包层设计的典型部件,用于将金属液流分配到繁殖通道并在包层出口收集。以几何突变为特征的磁流体流动中的高压损失是此类设计的主要可行性问题之一。最近,针对逐渐膨胀的电绝缘管汇中LM流体的三维MHD压降关系式进行了优化研究。在这里,该研究中开发的三维计算方法应用于逐渐收缩的出口歧管。利用COMSOL Multiphysics计算的135个流例进行了系统分析,Hartmann数为1000 <;Ha & lt;10000,雷诺数100 <;再保险& lt;12000,收缩角45°<;θ& lt;75°,固定收缩比为4。研究了Ha、Re和θ对循环、发展长度和总压降的影响。通过线性回归分析确定了压降系数k与Ha和Re相关的幂次规律,与Ludford层理论吻合较好。最后,建立了三维MHD压降系数与Ha、Re和θ的函数关系。结果与进气歧管进行了比较。结果表明,进气歧管内的流动具有较大的再循环区。在Ha、Re和θ的研究范围内,LM - MHD流在逐渐收缩过程中的压降系数k略低(<;8%),比逐步扩张时要高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Construction of 3D MHD pressure drop correlation and flow characterization in the contraction region of a fusion blanket manifold
Inlet and outlet manifolds are typical components of liquid metal (LM) blanket designs of a fusion power reactor to be used to distribute the LM flow into breeding channels and collect it at the exit of the blanket. High pressure loss in the magnetohydrodynamic (MHD) flows featuring abrupt geometrical changes is one of the main feasibility issues of such designs. Recently, optimization studies were conducted to construct 3D MHD pressure drop correlations for a LM flow in an electrically insulating manifold with gradual expansion. Here, the 3D computational approach developed in that study is applied to the outlet manifold featuring gradual contraction. A systematic analysis was performed with a total number of 135 flow cases computed with COMSOL Multiphysics for Hartmann numbers 1000 < Ha < 10,000, Reynolds numbers 100 < Re < 12,000, and contraction angles 45° < θ < 75° for a fixed contraction ratio of 4. The effects of Ha, Re and θ on the flow recirculation, development length and the total pressure drop were carefully examined. A linear regression analysis was used to determine the power rule of pressure drop coefficient k related to Ha and Re, demonstrating a good match with the Ludford layer theory. Eventually, a correlation for the 3D MHD pressure drop coefficient was constructed as a function of Ha, Re and θ. The results were compared against the inlet manifold. It was found that the flow in the inlet manifold exhibits larger recirculation zones. In the investigated range of Ha, Re and θ, the pressure drop coefficient k of the LM MHD flow in the gradual contraction is only slightly lower (< 8 %) than that in the gradual expansion.
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来源期刊
Fusion Engineering and Design
Fusion Engineering and Design 工程技术-核科学技术
CiteScore
3.50
自引率
23.50%
发文量
275
审稿时长
3.8 months
期刊介绍: The journal accepts papers about experiments (both plasma and technology), theory, models, methods, and designs in areas relating to technology, engineering, and applied science aspects of magnetic and inertial fusion energy. Specific areas of interest include: MFE and IFE design studies for experiments and reactors; fusion nuclear technologies and materials, including blankets and shields; analysis of reactor plasmas; plasma heating, fuelling, and vacuum systems; drivers, targets, and special technologies for IFE, controls and diagnostics; fuel cycle analysis and tritium reprocessing and handling; operations and remote maintenance of reactors; safety, decommissioning, and waste management; economic and environmental analysis of components and systems.
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