VHTR下充气室模型流动现象的实验测量

H. M. McIlroy, D. McEligot, R. Schultz, Daniel P. Christensen, R. Pink, R. Johnson
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引用次数: 7

摘要

极高温反应堆(VHTR)是第四代国际论坛选择进一步发展的六种反应堆技术之一。此外,该系统是美国下一代核电(NGNP)项目的主要候选者,该项目的目标是到2015年示范生产无排放的电力和氢气。为了准备确认NGNP性能所需的热工力学和安全分析,已经开始准备预测反应堆设计的热工力学条件和安全裕度所需的计算工具。对超低温堆设计进行有意义的可行性研究将需要对材料温度进行准确、可靠的预测,这取决于堆芯和其他部件冷却剂通道中的热对流。不幸的是,气冷反应堆的一维系统代码通常会低估这些温度,特别是对于功率降低的运行和假设的事故场景。同样,大多数通用CFD代码中的湍流模型也低估了这些温度。设计并建立了匹配折射率(MIR)流体动力学实验,以开发基准数据库,用于在可忽略的浮力和恒定流体特性的极限情况下,评估典型VHTR静压室几何形状的动量方程、标量混合和湍流模型的CFD解。«少
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental measurement of flow phenomena in a VHTR lower plenum model
The Very-High-Temperature Reactor (VHTR) is one of six reactor technologies chosen for further development by the Generation IV International Forum. In addition this system is the leading candidate for the Next Generation Nuclear Power (NGNP) Project in the U.S which has the goal of demonstrating the production of emissions free electricity and hydrogen by 2015. In preparation for the thermal-hydraulics and safety analyses that will be required to confirm the performance of the NGNP, work has begun on readying the computational tools that will be needed to predict the thermal-hydraulics conditions and safety margins of the reactor design. Meaningful feasibility studies for VHTR designs will require accurate, reliable predictions of material temperatures which depend upon the thermal convection in the coolant channels of the core and other components. Unfortunately, one-dimensional system codes for gas-cooled reactors typically underpredict these temperatures, particularly for reduced power operations and hypothesized accident scenarios. Likewise, most turbulence models in general-purpose CFD codes also underpredict these temperatures. Matched-Index-of-Refraction (MIR) fluid dynamics experiments have been designed and built to develop benchmark databases for the assessment of CFD solutions of the momentum equations, scalar mixing and turbulence models for typical VHTR plenum geometries in the limiting case of negligiblemore » buoyancy and constant fluid properties.« less
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