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Numerical Simulation of Jet Injection and Species Mixing under High-Pressure Conditions

机译:高压条件下射流注入与混合的数值模拟

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摘要

Direct Numerical Simulation (DNS) and Large Eddy Simulation (LES) are performed of a round fluid jet entering a high-pressure chamber. The chemical compositions and temperatures of the jet and that of the fluid in the chamber are initially prescribed. The governing equations consist of the conservation equations for mass, momentum, species and energy, and are complemented by a real-gas equation of state. The fluxes of species and heat are written in the framework of fluctuation-dissipation theory and include Soret and Dufour effects. For more than two species, the full mass diffusion and thermal diffusion matrices are computed using high-pressure mixing rules which utilize as building blocks the corresponding binary diffusion coefficients. The mixture viscosity and thermal conductivity are computed using standard mixing rules and corresponding states theory. To evaluate the physical model and numerical method, LES is employed first to simulate a supercritical N_2 jet injected into N_2. Time averaged results show reasonable agreement with the experimental data. Then, DNS is conducted to study the spatial evolution of a supercritical N_2 jet injected into CO_2. Time averaged results are used to compute the length of the potential core and the species diffusion characteristics. Spectral analysis is then applied on a time series data obtained at several axial locations and a dominant frequency is observed inside the potential core.
机译:对进入高压室的圆形流体射流进行直接数值模拟(DNS)和大涡模拟(LES)。首先规定射流的化学成分和温度以及腔室内流体的化学成分和温度。控制方程由质量,动量,种类和能量的守恒方程组成,并由状态的真实气体方程补充。物质和热通量是在波动耗散理论的框架内写成的,包括索雷特效应和杜福尔效应。对于两个以上的物种,使用高压混合规则来计算全质量扩散矩阵和热扩散矩阵,这些规则将相应的二进制扩散系数用作构建基块。使用标准混合规则和相应的状态理论计算混合物的粘度和导热系数。为了评估物理模型和数值方法,首先采用LES模拟注入N_2的超临界N_2射流。时间平均结果显示与实验数据合理吻合。然后,进行DNS研究注入CO_2的超临界N_2射流的空间演化。时间平均结果用于计算潜在核的长度和物质扩散特性。然后,对在几个轴向位置获得的时间序列数据进行频谱分析,并观察到潜在核心内部的主导频率。

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