首页> 外文会议>International topical meeting on nuclear reactor thermal hydraulics >SPECTRAL ANALYSIS OF THE TURBULENT ENERGY SPECTRUM IN SINGLE AND TWO-PHASE BUBBLY FLOWS IN DIFFERENT GEOMETRIES BASED ON DIRECT NUMERICAL SIMULATION RESULTS
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SPECTRAL ANALYSIS OF THE TURBULENT ENERGY SPECTRUM IN SINGLE AND TWO-PHASE BUBBLY FLOWS IN DIFFERENT GEOMETRIES BASED ON DIRECT NUMERICAL SIMULATION RESULTS

机译:基于直接数值模拟结果的不同几何形状中单相和两相气泡流的湍流能谱的光谱分析

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The spectral analysis of turbulent single and two-phase direct numerical simulation (DNS) data in flat plane channel, circular pipe, and reactor subchannel geometries is performed by using the recorded DNS velocity fluctuations as a function of time and applying the fast Fourier transformation (FFT). This results in an energy spectrum of the liquid turbulence in a frequency domain. The complexity of multiphase flows results in mixed velocity time history coming from either the liquid or gas phase. A modified single-phase signal that mimics the presence of bubbles ("pseudo-void") is developed to quantify the effect of the liquid signal intermittency as the bubble passes through a virtual probe. Comparisons of single-phase, pseudo-void, and two-phase results quantify the changes to the expected -5/3 slope of the energy spectrum for single-phase flows due to turbulent interactions caused by the wakes behind a bubble. The two-phase energy spectra show a slope close to -3 while single-phase energy spectra exhibit the expected -5/3 slope in the different geometries. Pseudo-void results indicate that the change to the energy spectrum in bubbly two-phase flows is due entirely from liquid turbulence interactions with the bubble wakes. A comprehensive spectral analysis for different geometries and different Reynolds number flows at varying distances from the wall is an essential step in developing physically sound closure models for bubble/liquid interactions. The comparison between different geometries demonstrates the direct applicability of various models to reactor-relevant geometries.
机译:通过使用记录的DNS速度波动随时间变化并应用快速傅里叶变换,对平面通道,圆形管道和反应堆子通道几何形状中的湍流单相和两相直接数值模拟(DNS)数据进行频谱分析( FFT)。这导致液体湍流的能谱在频域中。多相流的复杂性导致混合速度时间历史来自液相或气相。已开发出一种模仿气泡存在的修改后的单相信号(“伪空隙”),以量化气泡通过虚拟探针时液体信号间歇性的影响。单相,伪空隙和两相结果的比较量化了由于气泡后面的尾流引起的湍流相互作用,导致单相流能谱的预期-5/3斜率的变化。两相能谱显示出接近-3的斜率,而单相能谱显示出在不同几何形状中预期的-5/3斜率。伪空隙结果表明,在气泡两相流中能谱的变化完全归因于液体湍流与气泡尾流的相互作用。对于不同的几何形状和不同的雷诺数流量,在距壁的不同距离处进行全面的光谱分析,是开发用于气泡/液体相互作用的物理封闭模型的必不可少的步骤。不同几何形状之间的比较表明,各种模型都可直接应用于与反应堆相关的几何形状。

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